WO2010114877A2 - Systems and methods for stimulated emission imaging - Google Patents

Systems and methods for stimulated emission imaging Download PDF

Info

Publication number
WO2010114877A2
WO2010114877A2 PCT/US2010/029336 US2010029336W WO2010114877A2 WO 2010114877 A2 WO2010114877 A2 WO 2010114877A2 US 2010029336 W US2010029336 W US 2010029336W WO 2010114877 A2 WO2010114877 A2 WO 2010114877A2
Authority
WO
WIPO (PCT)
Prior art keywords
stimulation
excitation
stimulated emission
providing
common focal
Prior art date
Legal status (The legal status is an assumption and is not a legal conclusion. Google has not performed a legal analysis and makes no representation as to the accuracy of the status listed.)
Ceased
Application number
PCT/US2010/029336
Other languages
French (fr)
Other versions
WO2010114877A3 (en
Inventor
Xiaoliang Sunney Xie
Wei MIN
Sijia Lu
Current Assignee (The listed assignees may be inaccurate. Google has not performed a legal analysis and makes no representation or warranty as to the accuracy of the list.)
Harvard University
Original Assignee
Harvard University
Priority date (The priority date is an assumption and is not a legal conclusion. Google has not performed a legal analysis and makes no representation as to the accuracy of the date listed.)
Filing date
Publication date
Application filed by Harvard University filed Critical Harvard University
Publication of WO2010114877A2 publication Critical patent/WO2010114877A2/en
Publication of WO2010114877A3 publication Critical patent/WO2010114877A3/en
Anticipated expiration legal-status Critical
Ceased legal-status Critical Current

Links

Classifications

    • GPHYSICS
    • G02OPTICS
    • G02BOPTICAL ELEMENTS, SYSTEMS OR APPARATUS
    • G02B21/00Microscopes
    • G02B21/16Microscopes adapted for ultraviolet illumination ; Fluorescence microscopes
    • GPHYSICS
    • G01MEASURING; TESTING
    • G01NINVESTIGATING OR ANALYSING MATERIALS BY DETERMINING THEIR CHEMICAL OR PHYSICAL PROPERTIES
    • G01N21/00Investigating or analysing materials by the use of optical means, i.e. using sub-millimetre waves, infrared, visible or ultraviolet light
    • G01N21/62Systems in which the material investigated is excited whereby it emits light or causes a change in wavelength of the incident light
    • G01N21/63Systems in which the material investigated is excited whereby it emits light or causes a change in wavelength of the incident light optically excited
    • G01N21/636Systems in which the material investigated is excited whereby it emits light or causes a change in wavelength of the incident light optically excited using an arrangement of pump beam and probe beam; using the measurement of optical non-linear properties
    • GPHYSICS
    • G02OPTICS
    • G02BOPTICAL ELEMENTS, SYSTEMS OR APPARATUS
    • G02B21/00Microscopes
    • G02B21/0004Microscopes specially adapted for specific applications
    • G02B21/002Scanning microscopes
    • G02B21/0024Confocal scanning microscopes (CSOMs) or confocal "macroscopes"; Accessories which are not restricted to use with CSOMs, e.g. sample holders
    • G02B21/0052Optical details of the image generation
    • G02B21/0076Optical details of the image generation arrangements using fluorescence or luminescence

Definitions

  • the invention generally relates to imaging systems, and relates in particular to microscopy systems and methods.
  • Fluorescence microscopy has been widely used in biomedical sciences because of its high sensitivity and specificity. Many light-absorbing chromophores however, such as hemoglobin and cytochromes, have extremely low fluorescent quantum yields due to the much faster non-radiative decay rate than the spontaneous emission rate. In such cases, the remaining feeble fluorescence signal is overwhelmed by various background signals including stray light, solvent Raman background and detector dark counts, etc. Molecular contrasts other than fluorescence, therefore, would be highly beneficial for sensitive detection and imaging of these chromophores with non-detectable fluorescence.
  • SERS Surface enhanced Raman scattering
  • the invention provides a microscopy imaging system in accordance with an embodiment of the invention that includes a light source system, focusing optics, an optical detector and a processor.
  • the light source system is for providing an excitation beam at a center optical frequency ⁇ e and for providing a stimulation beam at a center optical frequency ⁇ s .
  • the focusing optics is for directing and focusing the excitation beam toward a common focal volume such that an energy level of a sample may be excited to an electronic excited state, and for directing and focusing the stimulation beam toward the common focal volume such that stimulated emission induced from the electronic excited state results in an increase in intensity of the stimulation beam.
  • the optical detector is for detecting an increase in a radiation field at the center optical frequency ⁇ s from stimulated emission from the common focal volume and for providing a detector signal.
  • the processor is for receiving the detector signal and for providing a pixel of an image for the microscopy imaging system.
  • the invention also provides a method of performing microscopy imaging that includes the steps of an providing excitation beam at a center optical frequency ⁇ e , providing a stimulation beam at a center optical frequency ⁇ s ; directing and focusing the excitation beam toward a common focal volume such that an energy level of a sample may be excited to an electronic excited state; directing and focusing the stimulation beam from the stimulation illumination toward the common focal volume such that stimulated emission induced from the electronic excited state results in an increase in intensity of the stimulation beam; detecting an increase in a radiation field at the center optical frequency ⁇ s from stimulated emission from the common focal volume; providing a stimulated emission detector signal responsive to the increase in the radiation field at the center optical frequency ⁇ s from stimulated emission from the common focal volume; and providing at least a portion of an image responsive to the stimulated emission detector signal.
  • the stimulated emission imaging of the invention allows detection and imaging of non-fluorescent chromophores such as drug molecules, small dye molecules and proteins in living cells, tissues and organisms with intrinsic
  • Figure 1 shows an illustrative diagrammatic view of an energy diagram of spontaneous emission, non-radiative decay, and stimulated emission in accordance with an embodiment of the invention
  • Figure 2 shows an illustrative diagrammatic view of the functionality of a portion of a system for performing stimulated emission analysis in accordance with an embodiment of the invention
  • Figures 3A and 3B show illustrative graphical representations of input and output excitation and stimulation pulse trains for use in accordance with an embodiment of the invention
  • Figure 4 shows an illustrative diagrammatic view of a system for performing stimulated emission microscopy in accordance with an embodiment of the invention
  • Figure 5 shows a diagrammatic graphical representation of a range of time delays between excitation and stimulation signals versus corresponding signals (in arbitrary units) in a system in accordance with an embodiment of the invention
  • Figure 6 shows a diagrammatic graphical representation of a stimulation wavelength spectra for crystal violet in glycerol solution using a system in accordance with an embodiment of the invention
  • Figure 7 shows an illustrative graphical representation of excitation and stimulation center wavelengths in a system in accordance with an embodiment of the invention from which the stimulation wavelength spectra of Figure 6 was obtained;
  • Figure 8 shows an illustrative graphical representation of measured stimulated emission signals for a range of concentrations of crystal violet in glycerol solution using a system in accordance with an embodiment of the invention
  • Figure 9 shows an illustrative micro-photographic representation of imaging distributions of cytoplasmic chromo proteins gtCP in live E coli cells by stimulated emission microscopy in accordance with an embodiment of the invention
  • Figure 10 shows an illustrative micro-photographic representation of a direct wide field transmission image of the sample of Figure 9;
  • Figure 11 shows an illustrative micro-photographic representation of imaging distributions of cytoplasmic chromoproteins cjBlue in live E coli cells by stimulated emission microscopy in accordance with an embodiment of the invention
  • Figure 12 shows an illustrative micro-photographic representation of a direct wide field transmission image of the sample of Figure 11;
  • Figures 13A and 13B show illustrative micro-photographic representations of stimulated emission images of lacZ gene expression probed by the hydrolysis of chromogenic substrate X-gal in a system in accordance with an embodiment of the invention
  • Figure 14 shows an illustrative a micro-photographic representation of a direct wide field transmission image of the sample of Figure 13B;
  • Figure 15 shows an illustrative micro-photographic representation of a three dimensional optical sectioning of kidney tissue by stimulated emission microscopy in a system in accordance with an embodiment of the invention
  • FIG 16 shows an illustrative micro-photographic representation of drug delivery of Toluidine blue O (TBO) in a human embryonic kidney in a system in accordance with an embodiment of the invention.
  • TBO Toluidine blue O
  • Figures 17 and 18 show illustrative micro-photographic representations of TBO skin distribution at two different depths in a system in accordance with an embodiment of the invention.
  • the present invention provides a new contrast mechanism for room temperature imaging systems that is based on stimulated emission.
  • the radiative emission rate from the molecular excited state is significantly amplified by virtue of stimulated emission, which converts the originally non-, or weakly radiating species into highly radiating.
  • the superb sensitivity is accomplished by implementation of high-frequency (MHz) phase-sensitive detection.
  • the overall nonlinear intensity dependence of the stimulated emission signal also offers an intrinsic three-dimensional optical sectioning capability.
  • the invention provides orders-of-magnitude improvement of detection sensitivity for non-fluorescent chromophores by use of stimulated emission that dominates the non-radiative decay.
  • the probe pulses stimulate the transition from the molecular excited state down to the ground state, and at the same time, experience a light amplification after passing through the molecules.
  • Such a stimulated emission signal is extracted by implementing high-frequency (MHz) phase sensitive detection with high sensitivity. The resulting signal is linearly dependent on both the pump and probe intensities, offering intrinsic three-dimensional optical sectioning capability for microscopy.
  • a variety of applications of this technique are demonstrated, such as visualizing distributions of chromoproteins, non-fluorescent variants of the green fluorescent protein, in live bacteria, monitoring basal level lacZ gene expression based on chromogenic substrate, 3D optical sectioning of medically stained tissues, and imaging subcellular distribution and transdermal delivery of a drug used in photodynamic therapy.
  • the microscopic technique also opens up the possibility for studying the biochemistry of endogenous proteins such as cytochromes and hemoglobin without labeling.
  • the phenomenon of stimulated emission was first described by Albert Einstein in 1917 in term of Einstein's B coefficients. An atom or molecule in its excited state can be stimulated down to the ground state by an incoming light field, resulting in the creation of a new photon identical to those in the incoming field. This process only occurs when the frequency of the incoming field matches the energy gap between the ground and the excited state. Stimulated emission is the basis for light amplification in laser.
  • the depopulation aspect of stimulated emission has been successfully used for population dumping from molecular excited states, super-resolution fluorescence microscopy, and fluorescence lifetime imaging.
  • the present invention utilizes the light amplification aspect of stimulated emission as a contrast mechanism for high-sensitivity microscopy.
  • the approach of the present invention introduces an external coherent laser field to greatly stimulate the radiative emission from the electronic excited state after the chromophore is optically excited but before its non-radiative decay dominates.
  • the invention therefore, involves stimulating emission of non-fluorescent or weakly fluorescent samples at an electronic excited state.
  • an excitation field 10 applied for example to a dye molecule may cause a sample to be excited to an electronic ex cited state 15 (e.g., change from a first energy state 12 to a second higher energy state 14, whereupon it settles or relaxes to a slightly lower third energy state 16).
  • a spontaneous fluorescent emission would occur as shown at 18, bringing the energy level back down to an electronic non-excited state 17 (e.g., from the relaxed state of the higher energy level 16 to a lower energy state 20, whereupon it would then settle or relax to the slightly lower original energy state 10).
  • a non-radiative decay will occur as shown at 22 between energy states 16 and 20.
  • the invention provides that prior to the non-radiative decay in a non-fluorescent or weakly fluorescent sample, a stimulated emission may be extracted as shown at 24 from the energy state 16, which is the relaxed state of the higher energy level, to the energy state 20.
  • consecutive optical excitation at one wavelength ⁇ oi and stimulated emission at a longer wavelength ⁇ > 23 may be provided.
  • Spontaneous emission is much slower than the non-radiative decay in weakly or non-fluorescent chromophores.
  • the stimulation field is designed to have the correct energy and timing, the stimulated emission can be the dominating decay pathway.
  • the excitation field and stimulation field may be provided as a stimulation beam 30 and an excitation beam 32 as shown in Figure 2.
  • each of the stimulation beam 30 and the excitation beam 32 may be provided as synchronized trains of pulses that are slightly offset from one another in a stimulated emission microscopy system.
  • the stimulation beam 30 may comprise a continuous wave (cw) stimulation field at a center frequency ⁇ s and the excitation beam 32 may comprise a cw excitation field at a center frequency ⁇ e .
  • the stimulated emission would result from the cw excitation beam exciting the sample to an electronic excited state, followed by the cw stimulation beam inducing stimulated emission from the electronic excited state.
  • one of the excitation field and the stimulation field may be provided as a cw wave while the other is provided as a train of pulses
  • the input stimulation beam 30 and excitation beam 32 (as modulated by a modulator 34) are combined by optics 31 (such as an x, y scanning combiner mirror) to provide spatially overlapped beams as a single beam in which the stimulation beam and the modulated excitation beam are collinear.
  • the single collinear beam is focused by an objective 36 (optionally adjustable in the z direction) onto a common focal spot 38.
  • the modulator 34 turns the intensity of the excitation beam on-and-off at 5 MHz.
  • the spectrally filtered stimulation beam 44 is received by optics 40 (including a filter 42) and is detected by a large-area photodiode 46, that is demodulated by a lock-in amplifier 48 to create the image contrast while scanning the beam.
  • the inset shown at 50 illustrates the energy gain or loss of the stimulation beam and excitation beam, respectively, for a single chromophore (S) at the focus.
  • the molecular absorption cross section ⁇ fl4f for a single chromophore in solution at room temperature is ⁇ 10 "16 cm 2 .
  • the integrated intensity attenuation of the excitation beam is ⁇ 10 "9 cm 2 .
  • Al F J 1 E is proportional to the ratio between ⁇ ⁇ _ >x and S:
  • N ⁇ is the number of excited molecules interrogated by the stimulation pulses.
  • AI s /I E is also on the order Of I(T 7 .
  • Such a small amplification is again often buried in the laser noise (-1%) of the stimulated emission beam.
  • the laser noise which occurs primarily at low frequency (kHz to DC), may be sufficiently suppressed.
  • N ? in Equation (2) above originates from linear optical excitation: N 1 ⁇ N 0 - 1 1 , ⁇ ⁇ Q ⁇ jS .
  • This relation together with Equation (2), indicates that the final signal AI s is linearly dependent on both I E and / v , Le,.
  • the detected stimulated emission signal depends on the product of the excitation beam intensity and the stimulated beam intensity.
  • the signal therefore, has an overall second order nonlinear intensity dependence, which provides high spatial resolution.
  • the modulated train of excitation pulses 30' and the train of stimulation pulses 32' are timed such that each individual excitation pulse 54 (having a center frequency of ⁇ e ) follows a respective stimulation pulse 52 (having a center frequency of ⁇ s ) by a time delay At as shown at 56 of, for example, about 0.2 ps.
  • the modulation of the excitation train of pulses at a modulation frequency of f mod is used by the detector to remove the original stimulation illumination from the received filtered illumination 44, providing a small gain in illumination at the stimulation frequency ⁇ s as shown at 58, which yields the illumination of interest.
  • 200 fs pulses may be used for excitation and stimulation as they are shorter than the excited state lifetime (sub-ps) of certain chromophores.
  • the stimulation pulses may be delayed with respect to the excitation pulses by ⁇ 200 fs in order for the vibrational relaxation to complete from level 1 to level 2 (shown at 14 and 16 in Figure 1), but before the non-radiative decay starts from level 2 to level 3
  • the intensity of the excitation beam is modulated, e.g., at 5 MHz, and this creates a modulation of the stimulated emission signal at the same frequency, because only when the excitation beam is present can the gain of the stimulated beam occur.
  • Such an induced modulation signal can be sensitively extracted by the lock-in amplifier at 5 MHz, at which the laser noise is lower than 10 "7 .
  • the dual beam modulation transfer scheme herein offers a superior sensitivity over the direct one-beam absorption detection.
  • the temporal delay between excitation and stimulation pulses is adjustable in certain embodiments by using a delay unit such as a translational stage for either one of the excitation and stimulation trains of pulses.
  • the delay may be provided within the laser source system itself that produces the excitation and stimulation trains of pulses.
  • Figure 4 shows a stimulated emission microscopy system 60 in accordance with an embodiment of the invention that includes a laser source system 62 for providing an excitation beam (e.g., an excitation train of laser pulses 64) at an excitation center frequency ⁇ e and a stimulation beam (e.g., a stimulation train of laser pulses 66) at a stimulation center frequency ⁇ s .
  • the laser source system 62 may include two lasers, or may include one laser, the output of which is used to provide the second train of pulses, for example using an optical parametric oscillator.
  • Two femptosecond (fs) optical parametric oscillators may be synchronously pumped by a fs mode-locked 76 MHz Ti:Sapphire laser.
  • Two frequency-doubled outputs from two OPO signal waves (in the near infrared range), in the wavelength range of 560 to 700 nm and pulse width around 200 fs, may provide the excitation and stimulation pulse trains, respectively.
  • the excitation train of pulses is modulated by a modulator 68, and a modulated excitation train of pulses 70 is combined with the stimulation train of pulses 66 at a combiner 72.
  • the timing of the stimulation train of laser pulses 66 may be adjusted with respect to the timing of the modulated excitation train of laser pulses 70 by a delay unit 74 that is adjustable as shown at 76.
  • the modulator 68 may, for example, be an acousto-optic modulator that switches the excitation train of pulses on and off at 5 MHz.
  • the combined modulated excitation train of pulses and stimulation train of pulses 78 are provided to a microscope 80.
  • the microscope 80 includes optics 82 and a reflector system 84 for directing the combined pulses 78 toward an objective 86.
  • the temporal delay between the synchronized excitation and stimulation inter-pulse is adjusted to about 0.2 ps by using a translational stage.
  • the intensity of the excitation beam is modulated by an acoustics optical modulator at 5 MHz.
  • To acquire images with laser beam scanning we used a 100 ⁇ s time constant for lock-in amplifier and pixel dwell time of 190 ⁇ s.
  • the reflector system 84 may include x and y direction scanners (such as mirrors or a scanning light modulator) for scanning in x and y directions on a sample 88.
  • a stage on which the sample 88 is placed may be adjustable in x an ⁇ y directions.
  • the objective 86 may permit scanning in the z direction.
  • the tightly focused combined modulated excitation train of pulses and stimulation train of pulses is directed toward the sample 88, and illumination from the sample 88 is collected by lens 90 and filtered by filter 92 (which removes illumination at the excitation frequency), providing filtered illumination 94 that is received by a detector 96 such as a large-area photodiode.
  • a lock-in amplifier 98 is coupled to both the modulator 68 and the detector 96 such that the modulation may be employed by the detector 96 to identify via image contrast the illumination of interest from filtered illumination 94.
  • the detector 96 provides a detector signal to a processing unit 100, which provides pixel data for an imaging system.
  • the filter 92 and detector 96 are located in the forward direction with respect to the objective 86, in further embodiments, the detector and filter may optionally be located in the reverse (epi) direction with respect to the objective 86.
  • the reflector system 84 may be a directional beam splitter and the system may include further optics including a mirror 102, optics 104, a filter 106 and a detector 108 such as a large-area photodiode.
  • the detector 108 is also coupled to the lock-in amplifier 98, and the output of the detector 108 is coupled to the processing unit 100, which again, provides pixel data for the imaging system.
  • Each excitation pulse from the modulated train of excitation pulses causes chromophores in the sample to change energy states from the low (or ground) state to the electronic excited state, and a quickly following stimulation pulse from the train of stimulation pulses stimulates emission, causing the energy to be released as illumination at the excitation frequency, increasing the total radiative quantum yield by as much as from 10 "5 to unify.
  • the originally weakly or non-fluorescent species are turned into highly radiating species
  • Figure 5 shows that stimulated emission signal 110 is dependent on the time delay (in picoseconds) between an excitation pulse 112 and a stimulation pulse 114 asymmetrically.
  • the signal vanishes quickly when the excitation pulse lags behind stimulation pulse (negative time delay value).
  • the relative slow decay ( ⁇ ps) in the positive delay region reflects the excited state population dynamics.
  • the absolute time zero for pulse overlap is determined by optimizing coherent anti-Stokes Raman scattering signal around 534 nm generated from 590nm and 660nm.
  • the signals are taken from 1 O ⁇ M crystal violet/water solution by using 590nm and 660nm as excitation and stimulation beams, respectively.
  • Figure 6 shows at 120 the measured stimulated emission spectrum of crystal violet in glycerol solution.
  • the excitation beam wavelength was fixed at 590nm as generally shown at 130 in Figure 7, and the stimulation wavelength was scanned within a range as shown at 132 in Figure 7 by tuning an OPO in the laser source system.
  • the measured temporal and spectral dependence of the stimulated emission signal were therefore experimentally confirmed.
  • the time-delay dependence was found to be asymmetric as shown in Figure 5.
  • the excitation pulse arrives later than the stimulation pulse, the signal drops as quickly as the pulse width ( ⁇ 200fs).
  • the initial growth and relative slow decay ( ⁇ ps) of the signal reflects the dynamics of the excited stale population of crystal violet in aqueous solution.
  • the recorded stimulated emission spectrum show in Figure 6 by tuning the wavelength of the stimulated beam is also in agreement with the reported fluorescence spectrum of crystal violet in glycerol solution.
  • Each stimulation pulse of the train of stimulation pulses therefore, may follow an excitation pulse of the train of excitation pulses by a delay of between about 200 femtoseconds and about 1 picosecond.
  • the stimulated emission signal scales linearly with crystal violet analyte concentration in aqueous solution as was predicted by Equation (2) above, which allows straightforward quantitative analysis.
  • Continuous flow of the sample was used to replenish the bleached molecules from the focus.
  • the detection limit was determined to be 6OnM with a signal-to-noise ratio of 1 :1.
  • the excitation and stimulation beams are 0.2 and 1 mW, respectively, at the objective focus.
  • a relative signal level of 10 "7 for AI s jl s can be routinely detected.
  • Figures 9 and 11 show at 150 and 160 respectively imaging distributions of cytoplasmic chromoproteins gtCP ( Figure 9) and cjBlue ( Figure 11) in live E. coli cells by stimulated emission microscopy.
  • Figures 10 and 12 show at 158 and 168 wide-field transmission images of the same samples as used in Figures 9 and 11 respectively using direct imaging techniques. Plasmids containing the genes encoded for gtCP and cjBLue are therefore, transformed into E. coli.
  • the gtCP exhibits a maximal absorption around 580nm, while cjBlue absorbs around 600nm. Compared to gtCP, cjBLue is expressed less abundantly inside cells.
  • the genetically encodable chromoprotein such as gtCP and cjBlue, are variants of green fluorescent proteins, and only absorb light but do not fluoresce.
  • gtCP and cjBlue are variants of green fluorescent proteins, and only absorb light but do not fluoresce.
  • tetrameric gtCP may be clearly shown to reside evenly inside cytoplasm by stimulated emission microscopy, which clearly distinguishes bright colored (e.g., amber colored) areas 152 from the background 154 as shown in Figure 9.
  • a 2 ⁇ m scale bar is shown at 156 in each of Figures 9 and 10.
  • the gene encoding for cjBlue when expressed in live E. coli cells, the cjBlue may be clearly shown to reside evenly inside cytoplasm by stimulated emission microscopy, which clearly distinguishes bright colored (e.g., blue colored) areas 162 from the background 164 as shown in Figure 11.
  • a 2 ⁇ m scale bar is shown at 166 in each of Figures 11 and 12.
  • cjBlue only expresses in a small faction of them.
  • Other endogenous chromoproteins such as hemoglobin and cytochrome c could be imaged in a similar way.
  • FIGS 13A and 13B show stimulated emission imaging of lacZ gene expression probed by the hydrolysis of chromogenic substrate X-gal. lacZ gene expression in live E. coli cells is at its basal level without adding inducer.
  • a portion of the image 170 in Figure I3A is enlarged as shown at 172 in Figure 13B.
  • the X-gal hydrolysis product shows inhomogeneous dot-like distribution inside cells (shown as violet color) at 172 as compared to the background 174 due to its insolubility.
  • the excitation and stimulation beams are at 590nm and 660nm, respectively.
  • the corresponding direct transmission image shown at 180 in Figure 14 shows no signs of blue colors from the cells.
  • a 4 ⁇ m scale bar is shown at 176 in Figure 13A, while Figures 13B and 14 show a 1 ⁇ m scale bar at 182. All of the full scale images were taken within 50 sec.
  • lacZ Since its discovery, lacZ has been a classic reporter for gene expression in various prokaryotic and eukaryotic cells.
  • the protein product, /?-galactosidase, encoded by lacZ gene catalyzes the hydrolysis of X-gal, a popular chromogenic substrate, to form a bluish product.
  • X-gal hydrolysis product has to accumulate enough for its blue color to be visually seen. With stimulated emission, the basal level lacZ gene expression in the absence of inducer can now be sensitively monitored.
  • Figure 15 shows at 190 a three dimensional optical sectioning of kidney tissue by stimulated emission microscopy. Cell nuclei are stained by hematoxylin dye.
  • stimulated emission microscopy may selectively image at different depths without being affected by an out-of-focus contribution.
  • a 20 ⁇ m scale bar 198 is shown in Figure 15.
  • the open area 192 shows that the dye is clearly visible (in a blue color) at 194 as compared to the background 196.
  • Imaging medically stained tissues with intrinsic 3D optical sectioning is, therefore, another suitable application for systems of the invention.
  • Various types of chromophore staining are widely used in histology for medical diagnosis.
  • hematoxylin is wisely used to stains basophilic structures such as nuclei.
  • thin (-micron scales) sections have to be physically cut piece-by-piece, because the traditional wide-field transmission microscopy relies on linear absorption and thus does not have optical sectioning ability. Thanks to the nonlinear intensity dependence, stimulated emission microscopy can selectively show images at different depths of stained tissues because the signal is only generated at the laser focus where the laser intensity is the strongest.
  • FIG. 16 Drug delivery of toluidine blue O (TBO), a drug used as photosensitizer in photodynamic therapy, is shown in Figures 16 - 18.
  • Figure 16 shows at 200 an image of the drug delivery of toluidine blue O (TBO) in a human embryonic kidney (HEK) 293 cell one hour after incubation of 10 ⁇ M TBO/PBS solution. Its local accumulation inside cytoplasm instead of the membrane or nucleus is clearly visible as shown at 202.
  • a 5 ⁇ m scale bar 208 is shown in Figure 16.
  • Figures 17 and 18 (show at 210 and 220 respectively) the TBO skin distribution in ear tissue at two different depths, 3 and 25 ⁇ m, respectively, 30 min after topical application of 10 ⁇ M TBO/PBS solution.
  • Figure 17 shows at 212 that the TBO is accumulated in the protein phase of the polygonal cells 214 rather than in the lipid-rich intercellular space.
  • Figure 18 shows at 222 a rich TBO distribution following the subcellular cytoplasm of nucleated basal keratinocytes.
  • TBO cationic thiazine dye toluidine blue O
  • TBO is enriched in the center of the protein phase of the polygonal stratum corneum cells rather than in the intercellular space which is in lipid phase.
  • TBO shows a rich distribution following the subcellular cytoplasm of nucleated viable epidermis in which cellular proliferation actively takes place.
  • Stimulated emission microscopy therefore, allows detection and imaging of non-fluorescent chromophores such as drug molecules, small dye molecules and proteins in living cells, tissues and organisms with intrinsic 3D optical sectioning and high sensitivity.

Landscapes

  • Physics & Mathematics (AREA)
  • Chemical & Material Sciences (AREA)
  • Analytical Chemistry (AREA)
  • General Physics & Mathematics (AREA)
  • Optics & Photonics (AREA)
  • Health & Medical Sciences (AREA)
  • Nonlinear Science (AREA)
  • Nuclear Medicine, Radiotherapy & Molecular Imaging (AREA)
  • Life Sciences & Earth Sciences (AREA)
  • Biochemistry (AREA)
  • General Health & Medical Sciences (AREA)
  • Immunology (AREA)
  • Pathology (AREA)
  • Investigating, Analyzing Materials By Fluorescence Or Luminescence (AREA)

Abstract

A microscopy imaging system is disclosed that includes a light source system, focusing optics, an optical detector and a processor. The light source system is for providing an excitation beam at a center optical frequency ωe and for providing a stimulation beam at a center optical frequency ωs. The focusing optics is for directing and focusing the excitation beam toward a common focal volume such that a sample may be excited to an electronic excited state, and for directing and focusing the stimulation beam toward the common focal volume such that stimulated emission induced from the electronic excited state results in an increase in intensity of the stimulated beam. The optical detector is for detecting an increase in a radiation field at the center optical frequency ωs from stimulated emission from the common focal volume and for providing a detector signal. The processor is for receiving the detector signal and for providing a pixel of an image for the microscopy imaging system. In certain embodiments, the stimulated emission imaging allows detection and imaging of non-fluorescent chromophores such as drug molecules, small dye molecules and proteins in living cells, tissues and organisms with intrinsic 3D optical sectioning and high sensitivity.

Description

SYSTEMS AND METHODS FOR STIMULATED EMISSION IMAGING PRIORITY
This application claims priority to US Application Serial No. 12/417,993, filed on April 3, 2009 and incorporated herein by reference in its entirety.
BACKGROUND
The invention generally relates to imaging systems, and relates in particular to microscopy systems and methods.
Fluorescence microscopy has been widely used in biomedical sciences because of its high sensitivity and specificity. Many light-absorbing chromophores however, such as hemoglobin and cytochromes, have extremely low fluorescent quantum yields due to the much faster non-radiative decay rate than the spontaneous emission rate. In such cases, the remaining feeble fluorescence signal is overwhelmed by various background signals including stray light, solvent Raman background and detector dark counts, etc. Molecular contrasts other than fluorescence, therefore, would be highly beneficial for sensitive detection and imaging of these chromophores with non-detectable fluorescence.
Various types of fluorescence-free spectroscopy have been employed to image those chromophores, including phototherma! (see "Label-Free Optical Imaging of Mitochondria in Live Cells" by D. Lasne, G. A. Blab, F. De Giorgi, F. Ichas, B. Lounis, and L. Cognet, Optics. Express vol.15, no. 21,. pp. 14184-14193 (October 17, 2007)) and two-photon absorption (see "High-Resolution in vivo Imaging of Blood Vessels without Labeling" by Fu, D., Ye, T., Matthews, T. E., Chen, B. J., Yurtserver, G &
Warren, W. S., Optics Letters, vol. 32, no. 18, pp. 2641 - 2643 (September 15, 2007)).
These methods however, are still very limited in detection sensitivity.
The detection of single molecule absorption was previously achieved in
cryogenic temperatures using frequency modulation (see "Optical Detection and
Spectroscopy of Single Molecules in a Solid" By Moerner, W. E. & Kador, L., Phys.
Rev. Lett. vol. 62, no. 21, p.2535 - 2538 (May 22, 1989)). It is difficult however, to
implement at room temperatures because of the broad absorption spectrum.
Surface enhanced Raman scattering (SERS) at electronic resonance has been achieved with single molecule sensitivity for those molecules having correct orientations with respect to metallic structures (see "Probing Single Molecules and
Single Nanoparticles by Surface-Enhanced Raman Scattering" by Nie S, Emory SR.,
Science, vol. 275, pp.1102 - 1106, (February 21, 1997)); and "Single Molecule
Detection Using Surface-Enhanced Raman Scattering (SERS)" by Kneipp K, Wang Y, Kneipp H, Perelman LT, Itzkan I, et al.,. Phys. Rev. Lett., vol. 78, no. 9, pp.1667 - 1670
(March 3, 1997)). The introduction however, of metal particles perturbs the sample and not all molecules in the sample can be accessed by SERS.
There is a strong need therefore, for a microscopy system and method for
providing improved sensitivity in imaging chromophores, and in particular, for
providing a microscopy system that permits imaging of light absorbing subjects having
extremely low fluorescence.
SUMMARY
The invention provides a microscopy imaging system in accordance with an embodiment of the invention that includes a light source system, focusing optics, an optical detector and a processor. The light source system is for providing an excitation beam at a center optical frequency ωe and for providing a stimulation beam at a center optical frequency ωs. The focusing optics is for directing and focusing the excitation beam toward a common focal volume such that an energy level of a sample may be excited to an electronic excited state, and for directing and focusing the stimulation beam toward the common focal volume such that stimulated emission induced from the electronic excited state results in an increase in intensity of the stimulation beam. The optical detector is for detecting an increase in a radiation field at the center optical frequency ωs from stimulated emission from the common focal volume and for providing a detector signal. The processor is for receiving the detector signal and for providing a pixel of an image for the microscopy imaging system.
The invention also provides a method of performing microscopy imaging that includes the steps of an providing excitation beam at a center optical frequency ωe, providing a stimulation beam at a center optical frequency ωs; directing and focusing the excitation beam toward a common focal volume such that an energy level of a sample may be excited to an electronic excited state; directing and focusing the stimulation beam from the stimulation illumination toward the common focal volume such that stimulated emission induced from the electronic excited state results in an increase in intensity of the stimulation beam; detecting an increase in a radiation field at the center optical frequency ωs from stimulated emission from the common focal volume; providing a stimulated emission detector signal responsive to the increase in the radiation field at the center optical frequency ωs from stimulated emission from the common focal volume; and providing at least a portion of an image responsive to the stimulated emission detector signal. In certain embodiments, the stimulated emission imaging of the invention allows detection and imaging of non-fluorescent chromophores such as drug molecules, small dye molecules and proteins in living cells, tissues and organisms with intrinsic 3D optical sectioning and high sensitivity.
BRIEF DESCRIPTION OF THE DRAWINGS
The following description may be further understood with reference to the accompanying drawings in which:
Figure 1 shows an illustrative diagrammatic view of an energy diagram of spontaneous emission, non-radiative decay, and stimulated emission in accordance with an embodiment of the invention;
Figure 2 shows an illustrative diagrammatic view of the functionality of a portion of a system for performing stimulated emission analysis in accordance with an embodiment of the invention;
Figures 3A and 3B show illustrative graphical representations of input and output excitation and stimulation pulse trains for use in accordance with an embodiment of the invention;
Figure 4 shows an illustrative diagrammatic view of a system for performing stimulated emission microscopy in accordance with an embodiment of the invention;
Figure 5 shows a diagrammatic graphical representation of a range of time delays between excitation and stimulation signals versus corresponding signals (in arbitrary units) in a system in accordance with an embodiment of the invention; Figure 6 shows a diagrammatic graphical representation of a stimulation wavelength spectra for crystal violet in glycerol solution using a system in accordance with an embodiment of the invention;
Figure 7 shows an illustrative graphical representation of excitation and stimulation center wavelengths in a system in accordance with an embodiment of the invention from which the stimulation wavelength spectra of Figure 6 was obtained;
Figure 8 shows an illustrative graphical representation of measured stimulated emission signals for a range of concentrations of crystal violet in glycerol solution using a system in accordance with an embodiment of the invention;
Figure 9 shows an illustrative micro-photographic representation of imaging distributions of cytoplasmic chromo proteins gtCP in live E coli cells by stimulated emission microscopy in accordance with an embodiment of the invention;
Figure 10 shows an illustrative micro-photographic representation of a direct wide field transmission image of the sample of Figure 9;
Figure 11 shows an illustrative micro-photographic representation of imaging distributions of cytoplasmic chromoproteins cjBlue in live E coli cells by stimulated emission microscopy in accordance with an embodiment of the invention;
Figure 12 shows an illustrative micro-photographic representation of a direct wide field transmission image of the sample of Figure 11;
Figures 13A and 13B show illustrative micro-photographic representations of stimulated emission images of lacZ gene expression probed by the hydrolysis of chromogenic substrate X-gal in a system in accordance with an embodiment of the invention;
Figure 14 shows an illustrative a micro-photographic representation of a direct wide field transmission image of the sample of Figure 13B;
Figure 15 shows an illustrative micro-photographic representation of a three dimensional optical sectioning of kidney tissue by stimulated emission microscopy in a system in accordance with an embodiment of the invention;
Figure 16 shows an illustrative micro-photographic representation of drug delivery of Toluidine blue O (TBO) in a human embryonic kidney in a system in accordance with an embodiment of the invention; and
Figures 17 and 18 show illustrative micro-photographic representations of TBO skin distribution at two different depths in a system in accordance with an embodiment of the invention.
The drawings are shown for illustrative purposes only. DETAILED DESCRIPTION OF THE ILLLUSTRATED EMBODIMENTS
Fluorescence is a powerful contrast mechanism used in molecular imaging due to its high sensitivity, Many light-absorbing chromophore molecules however, are only weakly fluorescent, because of their fast non-radiative decay. The feeble fluorescence from such chromophores is often overwhelmed by various background signals including stray light, solvent Raman background and detector dark counts, etc, Various fluorescence-free techniques have been developed, but are often limited by their weak signals.
The present invention provides a new contrast mechanism for room temperature imaging systems that is based on stimulated emission. The radiative emission rate from the molecular excited state is significantly amplified by virtue of stimulated emission, which converts the originally non-, or weakly radiating species into highly radiating. The superb sensitivity is accomplished by implementation of high-frequency (MHz) phase-sensitive detection. The overall nonlinear intensity dependence of the stimulated emission signal also offers an intrinsic three-dimensional optical sectioning capability.
For example, in accordance with certain embodiments, the invention provides orders-of-magnitude improvement of detection sensitivity for non-fluorescent chromophores by use of stimulated emission that dominates the non-radiative decay. In a femtosecond pump-probe experiment, shortly after optical excitation by the pump pulses, the probe pulses stimulate the transition from the molecular excited state down to the ground state, and at the same time, experience a light amplification after passing through the molecules. Such a stimulated emission signal is extracted by implementing high-frequency (MHz) phase sensitive detection with high sensitivity. The resulting signal is linearly dependent on both the pump and probe intensities, offering intrinsic three-dimensional optical sectioning capability for microscopy. A variety of applications of this technique are demonstrated, such as visualizing distributions of chromoproteins, non-fluorescent variants of the green fluorescent protein, in live bacteria, monitoring basal level lacZ gene expression based on chromogenic substrate, 3D optical sectioning of medically stained tissues, and imaging subcellular distribution and transdermal delivery of a drug used in photodynamic therapy. The microscopic technique also opens up the possibility for studying the biochemistry of endogenous proteins such as cytochromes and hemoglobin without labeling.
The phenomenon of stimulated emission was first described by Albert Einstein in 1917 in term of Einstein's B coefficients. An atom or molecule in its excited state can be stimulated down to the ground state by an incoming light field, resulting in the creation of a new photon identical to those in the incoming field. This process only occurs when the frequency of the incoming field matches the energy gap between the ground and the excited state. Stimulated emission is the basis for light amplification in laser. The depopulation aspect of stimulated emission has been successfully used for population dumping from molecular excited states, super-resolution fluorescence microscopy, and fluorescence lifetime imaging. The present invention utilizes the light amplification aspect of stimulated emission as a contrast mechanism for high-sensitivity microscopy.
The minimal spontaneous emission from weakly fluorescent chromophores, is overwhelmed by various background signals, such as stray light, solvent Raman scattering, detector dark counts, etc. due to the non-radiative decay rate being much faster than the spontaneous emission rate (i.e., Einstein's A coefficient). Applicants have discovered that a solution to this problem is to probe the short lived excited state by stimulated emission that dominates the non-radiative decay. In a pump-probe experiment, shortly after photo-excitation of the chromophore, stimulated emission is induced by a stimulation pulse during the short excited state lifetime, resulting in an increase in the stimulation beam's photon flux, which can be detected against the background. The approach of the present invention introduces an external coherent laser field to greatly stimulate the radiative emission from the electronic excited state after the chromophore is optically excited but before its non-radiative decay dominates. The invention, therefore, involves stimulating emission of non-fluorescent or weakly fluorescent samples at an electronic excited state. As shown in the energy diagram in Figure 1, for example, an excitation field 10 applied for example to a dye molecule, may cause a sample to be excited to an electronic ex cited state 15 (e.g., change from a first energy state 12 to a second higher energy state 14, whereupon it settles or relaxes to a slightly lower third energy state 16). If the sample were fluorescent, a spontaneous fluorescent emission would occur as shown at 18, bringing the energy level back down to an electronic non-excited state 17 (e.g., from the relaxed state of the higher energy level 16 to a lower energy state 20, whereupon it would then settle or relax to the slightly lower original energy state 10). If the sample is non-fluorescent, a non-radiative decay will occur as shown at 22 between energy states 16 and 20. The invention provides that prior to the non-radiative decay in a non-fluorescent or weakly fluorescent sample, a stimulated emission may be extracted as shown at 24 from the energy state 16, which is the relaxed state of the higher energy level, to the energy state 20. In accordance with an embodiment, consecutive optical excitation at one wavelength ωoi and stimulated emission at a longer wavelength α>23 may be provided. Spontaneous emission is much slower than the non-radiative decay in weakly or non-fluorescent chromophores. When the stimulation field is designed to have the correct energy and timing, the stimulated emission can be the dominating decay pathway. The excitation field and stimulation field may be provided as a stimulation beam 30 and an excitation beam 32 as shown in Figure 2. In an embodiment of the invention, each of the stimulation beam 30 and the excitation beam 32 may be provided as synchronized trains of pulses that are slightly offset from one another in a stimulated emission microscopy system. In accordance with other embodiments, the stimulation beam 30 may comprise a continuous wave (cw) stimulation field at a center frequency ωs and the excitation beam 32 may comprise a cw excitation field at a center frequency ωe. In such an embodiment, the stimulated emission would result from the cw excitation beam exciting the sample to an electronic excited state, followed by the cw stimulation beam inducing stimulated emission from the electronic excited state. In accordance with further embodiments, one of the excitation field and the stimulation field may be provided as a cw wave while the other is provided as a train of pulses, With reference again to Figure 2, the input stimulation beam 30 and excitation beam 32 (as modulated by a modulator 34) are combined by optics 31 (such as an x, y scanning combiner mirror) to provide spatially overlapped beams as a single beam in which the stimulation beam and the modulated excitation beam are collinear. The single collinear beam is focused by an objective 36 (optionally adjustable in the z direction) onto a common focal spot 38. The modulator 34 turns the intensity of the excitation beam on-and-off at 5 MHz. The spectrally filtered stimulation beam 44 is received by optics 40 (including a filter 42) and is detected by a large-area photodiode 46, that is demodulated by a lock-in amplifier 48 to create the image contrast while scanning the beam. The inset shown at 50 illustrates the energy gain or loss of the stimulation beam and excitation beam, respectively, for a single chromophore (S) at the focus.
The molecular absorption cross section σfl4f for a single chromophore in solution at room temperature is ~ 10"16 cm2. Under a tightly focused laser beam with a beam waist area of S (~ 10"9 cm2 for visible light focused by a high numerical aperture objective), the integrated intensity attenuation of the excitation beam,
Al F J 1E , is proportional to the ratio between σϋ_>x and S:
Figure imgf000013_0001
where No is the number of molecules in ground state. For a single chromophore, i.e. No=I, ME/IE is on the order of 10"7. Attenuation magnitude at such a scale cannot be detected by conventional absorption microscopy. It is noted that single molecule absorption has been previously achieved in cryogenic temperatures using frequency modulation, which is difficult to implement because of the broad absorption spectrum at room temperatures. Instead of detecting direct absorption, the invention provides detecting stimulated emission followed by absorption. The molecular cross section σUι em for stimulated emission, which is proportional to Einstein's B coefficient, is comparable to σπήτ . Similarly, the intensity gain of the stimulated emission beam, AIS/IS , is as follows
Figure imgf000014_0001
where N^ is the number of excited molecules interrogated by the stimulation pulses. For a single chromophore residing in level 2, i.e., N2=I , AI s /IE is also on the order Of I(T7.
Such a small amplification is again often buried in the laser noise (-1%) of the stimulated emission beam. By implementation of a high-frequency (higher than MHz) intensity modulation technique however, the laser noise, which occurs primarily at low frequency (kHz to DC), may be sufficiently suppressed.
In the dual beam scheme, N? in Equation (2) above originates from linear optical excitation: N1 ∞ N0 - 11, ■ σQ→λjS . This relation, together with Equation (2), indicates that the final signal AI s is linearly dependent on both IE and /v , Le,.
Figure imgf000014_0002
The detected stimulated emission signal depends on the product of the excitation beam intensity and the stimulated beam intensity. The signal, therefore, has an overall second order nonlinear intensity dependence, which provides high spatial resolution.
With reference to Figures 3A and 3B in which beams 30 and 32 are provided as trains of pulses, the modulated train of excitation pulses 30' and the train of stimulation pulses 32' are timed such that each individual excitation pulse 54 (having a center frequency of ωe) follows a respective stimulation pulse 52 (having a center frequency of ωs) by a time delay At as shown at 56 of, for example, about 0.2 ps. The modulation of the excitation train of pulses at a modulation frequency of fmod is used by the detector to remove the original stimulation illumination from the received filtered illumination 44, providing a small gain in illumination at the stimulation frequency ωs as shown at 58, which yields the illumination of interest.
In specific examples, 200 fs pulses may be used for excitation and stimulation as they are shorter than the excited state lifetime (sub-ps) of certain chromophores.
The stimulation pulses may be delayed with respect to the excitation pulses by ~ 200 fs in order for the vibrational relaxation to complete from level 1 to level 2 (shown at 14 and 16 in Figure 1), but before the non-radiative decay starts from level 2 to level 3
(shown at 16 and 18 in Figure 1).
In particular, the intensity of the excitation beam is modulated, e.g., at 5 MHz, and this creates a modulation of the stimulated emission signal at the same frequency, because only when the excitation beam is present can the gain of the stimulated beam occur. Such an induced modulation signal can be sensitively extracted by the lock-in amplifier at 5 MHz, at which the laser noise is lower than 10"7. In this way, the dual beam modulation transfer scheme herein offers a superior sensitivity over the direct one-beam absorption detection.
The temporal delay between excitation and stimulation pulses is adjustable in certain embodiments by using a delay unit such as a translational stage for either one of the excitation and stimulation trains of pulses. In other embodiments, the delay may be provided within the laser source system itself that produces the excitation and stimulation trains of pulses.
Figure 4, for example, shows a stimulated emission microscopy system 60 in accordance with an embodiment of the invention that includes a laser source system 62 for providing an excitation beam (e.g., an excitation train of laser pulses 64) at an excitation center frequency ωe and a stimulation beam (e.g., a stimulation train of laser pulses 66) at a stimulation center frequency ωs. The laser source system 62 may include two lasers, or may include one laser, the output of which is used to provide the second train of pulses, for example using an optical parametric oscillator. Two femptosecond (fs) optical parametric oscillators (OPO), for example, may be synchronously pumped by a fs mode-locked 76 MHz Ti:Sapphire laser. Two frequency-doubled outputs from two OPO signal waves (in the near infrared range), in the wavelength range of 560 to 700 nm and pulse width around 200 fs, may provide the excitation and stimulation pulse trains, respectively. The excitation train of pulses is modulated by a modulator 68, and a modulated excitation train of pulses 70 is combined with the stimulation train of pulses 66 at a combiner 72. The timing of the stimulation train of laser pulses 66 may be adjusted with respect to the timing of the modulated excitation train of laser pulses 70 by a delay unit 74 that is adjustable as shown at 76. The modulator 68 may, for example, be an acousto-optic modulator that switches the excitation train of pulses on and off at 5 MHz. The combined modulated excitation train of pulses and stimulation train of pulses 78 are provided to a microscope 80.
The microscope 80 includes optics 82 and a reflector system 84 for directing the combined pulses 78 toward an objective 86. The collinear modulated excitation and stimulation beams are focused with a high numerical aperture (N. A.) objective (NA=I .2) onto the common focal spot. The temporal delay between the synchronized excitation and stimulation inter-pulse is adjusted to about 0.2 ps by using a translational stage. The intensity of the excitation beam is modulated by an acoustics optical modulator at 5 MHz. A condenser with a N.A.=0,9 is used to collect the forward propagating stimulation beam. To acquire images with laser beam scanning, we used a 100 μs time constant for lock-in amplifier and pixel dwell time of 190 μs.
In certain embodiments, the reflector system 84 may include x and y direction scanners (such as mirrors or a scanning light modulator) for scanning in x and y directions on a sample 88. In other embodiments, a stage on which the sample 88 is placed may be adjustable in x anάy directions. In certain embodiments, the objective 86 may permit scanning in the z direction.
The tightly focused combined modulated excitation train of pulses and stimulation train of pulses is directed toward the sample 88, and illumination from the sample 88 is collected by lens 90 and filtered by filter 92 (which removes illumination at the excitation frequency), providing filtered illumination 94 that is received by a detector 96 such as a large-area photodiode.
A lock-in amplifier 98 is coupled to both the modulator 68 and the detector 96 such that the modulation may be employed by the detector 96 to identify via image contrast the illumination of interest from filtered illumination 94. The detector 96 provides a detector signal to a processing unit 100, which provides pixel data for an imaging system.
While the filter 92 and detector 96 are located in the forward direction with respect to the objective 86, in further embodiments, the detector and filter may optionally be located in the reverse (epi) direction with respect to the objective 86. For example, as also shown in Figure 4, the reflector system 84 may be a directional beam splitter and the system may include further optics including a mirror 102, optics 104, a filter 106 and a detector 108 such as a large-area photodiode. The detector 108 is also coupled to the lock-in amplifier 98, and the output of the detector 108 is coupled to the processing unit 100, which again, provides pixel data for the imaging system.
Each excitation pulse from the modulated train of excitation pulses causes chromophores in the sample to change energy states from the low (or ground) state to the electronic excited state, and a quickly following stimulation pulse from the train of stimulation pulses stimulates emission, causing the energy to be released as illumination at the excitation frequency, increasing the total radiative quantum yield by as much as from 10"5 to unify. As a result, the originally weakly or non-fluorescent species are turned into highly radiating species,
For example, Figure 5 shows that stimulated emission signal 110 is dependent on the time delay (in picoseconds) between an excitation pulse 112 and a stimulation pulse 114 asymmetrically. The signal vanishes quickly when the excitation pulse lags behind stimulation pulse (negative time delay value). The relative slow decay (~ps) in the positive delay region reflects the excited state population dynamics. The absolute time zero for pulse overlap is determined by optimizing coherent anti-Stokes Raman scattering signal around 534 nm generated from 590nm and 660nm. The signals are taken from 1 OμM crystal violet/water solution by using 590nm and 660nm as excitation and stimulation beams, respectively.
Figure 6 shows at 120 the measured stimulated emission spectrum of crystal violet in glycerol solution. The excitation beam wavelength was fixed at 590nm as generally shown at 130 in Figure 7, and the stimulation wavelength was scanned within a range as shown at 132 in Figure 7 by tuning an OPO in the laser source system. These results are in agreement with the reported fluorescence spectrum for such a sample.
The measured temporal and spectral dependence of the stimulated emission signal were therefore experimentally confirmed. The time-delay dependence was found to be asymmetric as shown in Figure 5. When the excitation pulse arrives later than the stimulation pulse, the signal drops as quickly as the pulse width (~200fs). On the contrary, the initial growth and relative slow decay (~ps) of the signal reflects the dynamics of the excited stale population of crystal violet in aqueous solution. The recorded stimulated emission spectrum show in Figure 6 by tuning the wavelength of the stimulated beam is also in agreement with the reported fluorescence spectrum of crystal violet in glycerol solution. Each stimulation pulse of the train of stimulation pulses, therefore, may follow an excitation pulse of the train of excitation pulses by a delay of between about 200 femtoseconds and about 1 picosecond.
As shown at 140 in Figure 8, the stimulated emission signal scales linearly with crystal violet analyte concentration in aqueous solution as was predicted by Equation (2) above, which allows straightforward quantitative analysis. Continuous flow of the sample was used to replenish the bleached molecules from the focus. The detection limit was determined to be 6OnM with a signal-to-noise ratio of 1 :1. The excitation and stimulation beams are 0.2 and 1 mW, respectively, at the objective focus. For a 1 sec time constant at the lock-in amplifier, a relative signal level of 10"7 for AI s jls can be routinely detected. This superb sensitivity in the nano-Molar range (approaching the shot noise limit) corresponds to about a few (<5) molecules within the focal volume of the microscope objective (~10~16 liter). To detect higher concentration samples, laser power levels may be lowered to reduce photo-bleaching.
Imaging of live cells has been achieved using stimulated emission systems and methods of the invention. Figures 9 and 11 show at 150 and 160 respectively imaging distributions of cytoplasmic chromoproteins gtCP (Figure 9) and cjBlue (Figure 11) in live E. coli cells by stimulated emission microscopy. Figures 10 and 12 show at 158 and 168 wide-field transmission images of the same samples as used in Figures 9 and 11 respectively using direct imaging techniques. Plasmids containing the genes encoded for gtCP and cjBLue are therefore, transformed into E. coli. The gtCP exhibits a maximal absorption around 580nm, while cjBlue absorbs around 600nm. Compared to gtCP, cjBLue is expressed less abundantly inside cells.
The genetically encodable chromoprotein, such as gtCP and cjBlue, are variants of green fluorescent proteins, and only absorb light but do not fluoresce. When the gene encoding for gtCP is expressed in live E. coli cells, tetrameric gtCP may be clearly shown to reside evenly inside cytoplasm by stimulated emission microscopy, which clearly distinguishes bright colored (e.g., amber colored) areas 152 from the background 154 as shown in Figure 9. A 2 μm scale bar is shown at 156 in each of Figures 9 and 10.
Similarly, when the gene encoding for cjBlue is expressed in live E. coli cells, the cjBlue may be clearly shown to reside evenly inside cytoplasm by stimulated emission microscopy, which clearly distinguishes bright colored (e.g., blue colored) areas 162 from the background 164 as shown in Figure 11. A 2 μm scale bar is shown at 166 in each of Figures 11 and 12. Unlike gtCP which expresses in most of the cells, cjBlue only expresses in a small faction of them. Other endogenous chromoproteins such as hemoglobin and cytochrome c could be imaged in a similar way. Stimulated emission microscopy therefore, opens possibility for studying the biochemistry of these chromoproteins and for utilizing them as genetically encodable imaging probes. Figures 13A and 13B show stimulated emission imaging of lacZ gene expression probed by the hydrolysis of chromogenic substrate X-gal. lacZ gene expression in live E. coli cells is at its basal level without adding inducer. A portion of the image 170 in Figure I3A is enlarged as shown at 172 in Figure 13B. Different from the homogeneous protein images in Figures 9 and 11, the X-gal hydrolysis product shows inhomogeneous dot-like distribution inside cells (shown as violet color) at 172 as compared to the background 174 due to its insolubility. The excitation and stimulation beams are at 590nm and 660nm, respectively. The corresponding direct transmission image shown at 180 in Figure 14 shows no signs of blue colors from the cells. A 4 μm scale bar is shown at 176 in Figure 13A, while Figures 13B and 14 show a 1 μm scale bar at 182. All of the full scale images were taken within 50 sec.
Since its discovery, lacZ has been a classic reporter for gene expression in various prokaryotic and eukaryotic cells. The protein product, /?-galactosidase, encoded by lacZ gene, catalyzes the hydrolysis of X-gal, a popular chromogenic substrate, to form a bluish product. Traditionally, the X-gal hydrolysis product has to accumulate enough for its blue color to be visually seen. With stimulated emission, the basal level lacZ gene expression in the absence of inducer can now be sensitively monitored. Different from the homogeneous chromoprotein images, the more inhomogeneous distribution of X-gal hydrolysis product inside cells (shown in Figure 13B) is consistent with the fact that X-gal hydrolysis product is insoluble and tends to form small precipitates inside cells. The superb sensitivity of stimulated emission microscopy allows monitoring lacZ reporter gene activity with unprecedented detail. Applicants have also discovered that the overall quadratic power dependence as outlined above (and as experimentally demonstrated), would allow three-dimensional (3D) optical sectioning, as in many other multi-photon techniques.
Figure 15 shows at 190 a three dimensional optical sectioning of kidney tissue by stimulated emission microscopy. Cell nuclei are stained by hematoxylin dye.
Unlike the traditional linear transmission imaging, stimulated emission microscopy may selectively image at different depths without being affected by an out-of-focus contribution. A 20 μm scale bar 198 is shown in Figure 15. The open area 192 shows that the dye is clearly visible (in a blue color) at 194 as compared to the background 196.
Imaging medically stained tissues with intrinsic 3D optical sectioning is, therefore, another suitable application for systems of the invention. Various types of chromophore staining are widely used in histology for medical diagnosis. For example, hematoxylin is wisely used to stains basophilic structures such as nuclei. In the conventional approach, thin (-micron scales) sections have to be physically cut piece-by-piece, because the traditional wide-field transmission microscopy relies on linear absorption and thus does not have optical sectioning ability. Thanks to the nonlinear intensity dependence, stimulated emission microscopy can selectively show images at different depths of stained tissues because the signal is only generated at the laser focus where the laser intensity is the strongest.
Drug delivery of toluidine blue O (TBO), a drug used as photosensitizer in photodynamic therapy, is shown in Figures 16 - 18. Figure 16 shows at 200 an image of the drug delivery of toluidine blue O (TBO) in a human embryonic kidney (HEK) 293 cell one hour after incubation of 10 μM TBO/PBS solution. Its local accumulation inside cytoplasm instead of the membrane or nucleus is clearly visible as shown at 202. A 5μm scale bar 208 is shown in Figure 16. Figures 17 and 18 (show at 210 and 220 respectively) the TBO skin distribution in ear tissue at two different depths, 3 and 25 μm, respectively, 30 min after topical application of 10 μM TBO/PBS solution. At the surface layer of stratum corneum, Figure 17 shows at 212 that the TBO is accumulated in the protein phase of the polygonal cells 214 rather than in the lipid-rich intercellular space. At the layer of viable epidermis, Figure 18 shows at 222 a rich TBO distribution following the subcellular cytoplasm of nucleated basal keratinocytes. These images in Figures 16 — 18 support the hydrophilic path as a main pathway for transdermal drug delivery of TBO. Excitation and stimulation beams are at 590nm and 660nm, respectively. All the 2D images were taken within 50 sec. A 15μm scale bar 218 is shown in Figure 17, and a 15μm scale bar 228 is shown in Figure 18.
The use of stimulated emission microscopy to monitor drug delivery is therefore demonstrated. In particular, we show mapping of a cationic thiazine dye toluidine blue O (TBO) at both the cellular and tissue levels. Having a selective affinity for cancer cells in vivo, TBO is an actively explored photosensitize!" in photodynamic therapy. Subcellular localization of photosensitizers is crucial since it can influence both the level and the kinetics of apoptosis induction. It is conventionally difficult, however, to image the true distribution of TBO because its fluorescence is quenched when bound to tissue substrates and only the non-specific stain residue in the tissue retains its native fluorescence. Because stimulated emission microscopy is independent of fluorescence contrast, it is suitable for addressing this problem. The stimulated emission image of TBO inside cancer cells after incubation clearly shows its local accumulation inside cytoplasm instead of membrane or nucleus. When topically applied to skin tissue, being hydrophilic and water soluble, TBO is enriched in the center of the protein phase of the polygonal stratum corneum cells rather than in the intercellular space which is in lipid phase. At a 20 μm deeper depth, TBO shows a rich distribution following the subcellular cytoplasm of nucleated viable epidermis in which cellular proliferation actively takes place. These imaging results are consistent with the known high affinity of TBO for cytoplasmic RNA.
Stimulated emission microscopy, therefore, allows detection and imaging of non-fluorescent chromophores such as drug molecules, small dye molecules and proteins in living cells, tissues and organisms with intrinsic 3D optical sectioning and high sensitivity.
Those skilled in the art will appreciate that numerous modifications and variations may be made to the above disclosed embodiments without departing from the spirit and scope of the invention. What is claimed is:

Claims

L A microscopy imaging system comprising: a light source system for providing an excitation beam at a center optical frequency ωe and for providing a stimulation beam at a center optical frequency ωs; focusing optics for directing and focusing the excitation beam toward a common focal volume such that the sample may be excited to an electronic excited state, and for directing and focusing the stimulation beam toward the common focal volume such that stimulated emission induced from the electronic excited state results in an increase in intensity of the stimulation beam; an optical detector for detecting an increase in a radiation field at the center optical frequency ωs from stimulated emission from the common focal volume and for providing a detector signal; and a processor for receiving the detector signal and for providing a pixel of an image for the microscopy imaging system.
2. The microscopy imaging system as claimed in claim 1, wherein said excitation beam includes a train of excitation pulses, and wherein said stimulation beam includes a train of stimulation pulses that is synchronized with said train of excitation pulses.
3. The microscopy imaging system as claimed in claim 2, wherein each stimulation pulse of said train of stimulation pulses follows an excitation pulse of the train of excitation pulses by a delay of between about 200 femtoseconds and about 1 picosecond.
4. The microscopy imaging system as claimed in claim 1, wherein at least one of the excitation beam and the stimulation beam is a continuous wave (cw) beam.
5. The microscopy imaging system as claimed in claim 1, wherein said excitation beam is modulated by a modulator.
6. The microscopy imaging system as claimed in claim 5, wherein said optical detector is coupled to a lock-in amplifier that is also coupled to the modulator.
7. The microscopy imaging system as claimed in claim 5, wherein said modulator provides amplitude modulation.
8. The microscopy imaging system as claimed in claim 1, wherein said system further includes scanning optics for positioning said excitation beam from the excitation beam with respect to the common focal volume in x and y directions.
9. The microscopy imaging system as claimed in claim 8, wherein said system further includes scanning optics for positioning said excitation beam from the excitation beam with respect to the common focal volume in a z direction.
10. The microscopy imaging system as claimed in claim 1, wherein said detector is a point photodetector.
11. The microscopy imaging system as claimed in claim 1, wherein said detector is positioned in a reverse (epi-) direction with respect to the sample such that the optical detector detects the increase in the intensity of the stimulation beam from the common focai volume back through at least a portion of the focusing optics,
12. The microscopy imaging system as claimed i claim 1, wherein said focusing optics directs and focuses the excitation beam and the stimulation beam toward the common focal volume as a single beam in which the excitation beam and the stimulation beam are collinear.
13. A method of performing microscopy imaging comprising the steps of: providing an excitation beam at a center optical frequency ωe; providing a stimulation beam at a center optical frequency ωs; directing and focusing the excitation beam toward a common focal volume such that the sample is excited to an electronic excited state; directing and focusing the stimulation beam toward the common focal volume such that stimulated emission induced from the electronic excited state produces an increase in intensity of the stimulation beam;
26 detecting an increase in a radiation field at the center optical frequency ωs from stimulated emission from the common focal volume; providing a stimulated emission detector signal responsive to the increase in the radiation field at the center optical frequency ωs from stimulated emission from the common focal volume; and providing at least a portion of an image responsive to the stimulated emission detector signal.
14. The method as claimed in claim 13, wherein said step of providing said excitation beam includes providing a train of excitation pulses, and wherein said step of providing stimulation beam includes providing a train of stimulation pulses.
15. The method as claimed in claim 13, wherein said step of focusing the excitation beam toward the common focal volume precedes the step of focusing the stimulation beam toward the common focal volume by a predetermined period of time of between about 200 femtoseconds and about 1 picosecond.
16. The method as claimed in claim 15, wherein said predetermined period of time is about one picosecond.
17. The method as claimed in claim 13, wherein said method further includes the step of modulating the excitation beam.
18. The method as claimed in claim 17, wherein the excitation beam is amplitude modulated.
19. The method as claimed in claim 17, wherein said step of providing at least a portion of an image responsive to the stimulated emission detector signal includes employing a lock-in amplifier.
20. The method as claimed in claim 13, wherein said method further includes the step of positioning said excitation beam with respect to the common focal volume in x and y directions.
21. The method as claimed in claim 20, wherein said method further includes the step of positioning said excitation beam with respect to the common focal volume in a z direction.
22. The method as claimed in claim 13, wherein said step of detecting an increase in a radiation field at the center optical frequency ωs from stimulated emission from the common focal volume involves using a point photodetector.
23. The method as claimed in claim 13, wherein said excitation beam and said stimulation beam are spatially overlapped with one another and are directed and focused toward a common focal spot.
24. The method as claimed in claim 13, wherein said method provides a high spatial resolution due to the stimulated emission detector signal having a second-order nonlinear intensity dependence.
25. The method as claimed in claim 13, wherein the sample includes chromophores with non-detectable fluorescence.
PCT/US2010/029336 2009-04-03 2010-03-31 Systems and methods for stimulated emission imaging Ceased WO2010114877A2 (en)

Applications Claiming Priority (2)

Application Number Priority Date Filing Date Title
US12/417,993 2009-04-03
US12/417,993 US20100252750A1 (en) 2009-04-03 2009-04-03 Systems and methods for stimulated emission imaging

Publications (2)

Publication Number Publication Date
WO2010114877A2 true WO2010114877A2 (en) 2010-10-07
WO2010114877A3 WO2010114877A3 (en) 2011-01-13

Family

ID=42825421

Family Applications (1)

Application Number Title Priority Date Filing Date
PCT/US2010/029336 Ceased WO2010114877A2 (en) 2009-04-03 2010-03-31 Systems and methods for stimulated emission imaging

Country Status (2)

Country Link
US (1) US20100252750A1 (en)
WO (1) WO2010114877A2 (en)

Cited By (4)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
RU2515341C2 (en) * 2012-08-20 2014-05-10 Федеральное государственное бюджетное образовательное учреждение высшего профессионального образования "Московский государственный технический университет радиотехники, электроники и автоматики" Two-photon scanning microscope with automatic precision image focusing and method for automatic precision image focusing
JP2015517681A (en) * 2012-05-07 2015-06-22 アンセルム(アンスティチュ ナシオナル ドゥ ラ サンテ エ ドゥ ラルシェルシュ メディカル) A microscope for imaging the tissue of interest in a sample with high spatial resolution
WO2016108049A1 (en) * 2014-12-31 2016-07-07 Isis Innovation Limited Optical interrogation and control of dynamic biological functions
US10948410B2 (en) 2016-12-02 2021-03-16 National Research Council Of Canada Optical imaging of mineral species using hyperspectral modulation transfer techniques

Families Citing this family (11)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
WO2011162787A1 (en) 2010-06-22 2011-12-29 President And Fellows Of Harvard College Systems and methods providing efficient detection of back-scattered illumination in modulation transfer microscopy or micro-spectroscopy
EP2720026B1 (en) * 2011-06-07 2023-09-20 Nanophoton Corporation Raman microscope and raman spectrometric method
ES2396814B1 (en) * 2011-06-29 2013-11-29 Universidad De Sevilla PROCEDURE FOR DETECTING THE X-GAL PRECIPITATE OR OTHER OPAC PRECIPITATES THROUGH CONFOCAL MICROSCOPY
US9360416B2 (en) * 2011-07-13 2016-06-07 Universität Leipzig Twin-focus photothermal correlation spectroscopy method and device for the characterization of dynamical processes in liquids and biomaterials with the help of absorbing markers
DE102012001854A1 (en) * 2012-02-01 2013-08-01 Leica Microsystems (Schweiz) Ag Special lighting Operations stereomicroscope
US9791371B2 (en) * 2014-10-29 2017-10-17 The United States Of America, As Represented By The Secretary, Department Of Health And Human Services Systems and methods for distinguishing stimulated emissions as a means of increasing the signal of fluorescence microscopy
EP3359929B1 (en) * 2015-10-09 2024-06-19 Leica Microsystems CMS GmbH Dynamic lock-in detection bandwidth for srs imaging
US10097281B1 (en) 2015-11-18 2018-10-09 Hypres, Inc. System and method for cryogenic optoelectronic data link
US10901193B2 (en) * 2016-02-26 2021-01-26 University Of Southern California Optimized volumetric imaging with selective volume illumination and light field detection
CN116262034A (en) * 2021-12-13 2023-06-16 深圳先进技术研究院 In-vivo two-photon microscopic imaging system
CN118826888B (en) * 2024-07-04 2026-01-23 中国人民解放军海军工程大学 Laser communication and laser imaging integrated system

Family Cites Families (10)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
US4468136A (en) * 1982-02-12 1984-08-28 The Johns Hopkins University Optical beam deflection thermal imaging
US4845368A (en) * 1987-06-26 1989-07-04 The United States Of America As Represented By The United States Department Of Energy Method for the substantial reduction of quenching effects in luminescence spectrometry
US20050111089A1 (en) * 1994-07-15 2005-05-26 Baer Stephen C. Superresolving microscopy apparatus
US5866911A (en) * 1994-07-15 1999-02-02 Baer; Stephen C. Method and apparatus for improving resolution in scanned optical system
US6174677B1 (en) * 1995-10-13 2001-01-16 Ut-Battelle, Llc Advanced surface-enhanced Raman gene probe systems and methods thereof
US5814516A (en) * 1995-10-13 1998-09-29 Lockheed Martin Energy Systems, Inc. Surface enhanced Raman gene probe and methods thereof
US5705821A (en) * 1996-11-07 1998-01-06 Sandia Corporation Scanning fluorescent microthermal imaging apparatus and method
WO2005111584A2 (en) * 2004-04-06 2005-11-24 Solaris Nanosciences, Inc. Method and apparatus for enhancing plasmon-polariton and phonon polariton resonance
MXPA06013440A (en) * 2004-05-19 2007-06-12 Vp Holding Llc Optical sensor with layered plasmon structure for enhanced detection of chemical groups by sers.
GB0610462D0 (en) * 2006-05-25 2006-07-05 Imp Innovations Ltd Apparatus and method for obtaining spectral information

Cited By (4)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
JP2015517681A (en) * 2012-05-07 2015-06-22 アンセルム(アンスティチュ ナシオナル ドゥ ラ サンテ エ ドゥ ラルシェルシュ メディカル) A microscope for imaging the tissue of interest in a sample with high spatial resolution
RU2515341C2 (en) * 2012-08-20 2014-05-10 Федеральное государственное бюджетное образовательное учреждение высшего профессионального образования "Московский государственный технический университет радиотехники, электроники и автоматики" Two-photon scanning microscope with automatic precision image focusing and method for automatic precision image focusing
WO2016108049A1 (en) * 2014-12-31 2016-07-07 Isis Innovation Limited Optical interrogation and control of dynamic biological functions
US10948410B2 (en) 2016-12-02 2021-03-16 National Research Council Of Canada Optical imaging of mineral species using hyperspectral modulation transfer techniques

Also Published As

Publication number Publication date
US20100252750A1 (en) 2010-10-07
WO2010114877A3 (en) 2011-01-13

Similar Documents

Publication Publication Date Title
US20100252750A1 (en) Systems and methods for stimulated emission imaging
Andresen et al. Infrared multiphoton microscopy: subcellular-resolved deep tissue imaging
US8792156B1 (en) Laser illumination systems and methods for dual-excitation wavelength non-linear optical microscopy and micro-spectroscopy systems
Ye et al. Nonlinear absorption microscopy
Baldeweck et al. Multiphoton Microscopy and Fluorescence Lifetime Imaging: Applications in Biology and Medicine
Morris et al. Kerr-gated time-resolved Raman spectroscopy of equine cortical bone tissue
US10234666B2 (en) Depth enhanced and fluorescence lifetime stimulated fluorescent emission for in-vivo imaging
WO2011162787A1 (en) Systems and methods providing efficient detection of back-scattered illumination in modulation transfer microscopy or micro-spectroscopy
US12196682B2 (en) Stimulated Raman photothermal microscope
Meng et al. Microscopic coherent Raman imaging using low-cost continuous wave lasers
Ashkenazi et al. Photoacoustic probing of fluorophore excited state lifetime with application to oxygen sensing
Cruz et al. Coherent control improves biomedical imaging with ultrashort shaped pulses
Ishii et al. Focusing new light on brain functions: multiphoton microscopy for deep and super-resolution imaging
US10054778B2 (en) Orthogonal confocal stimulated emission microscopy
Dicko et al. Sub-micrometric spatial distribution of amorphous and crystalline carbonates in biogenic crystals using coherent Raman microscopy
US11953440B2 (en) Method and apparatus for simultaneous nonlinear excitation and detection of different chromophores across a wide spectral range using ultra-broadband light pulses and time-resolved detection
Gu Femtosecond biophotonics: core technology and applications
Xie et al. Coherent anti-Stokes Raman scattering microscopy
Ji Coherent Raman scattering microscopy and biomedical applications
US12590885B2 (en) Stimulated Raman photothermal microscope with optical parametric amplifier source
Volkmer Coherent Raman scattering microscopy
Nakabayashi et al. Application of Fluorescence Lifetime Imaging (FLIM) to measure intracellular environments in a single cell
Kolb et al. Virtual HE histology by fiber-based picosecond two-photon microscopy
D'Arco et al. Implementation of stimulated Raman scattering microscopy for single cell analysis
Lin Development of Stimulated Raman Scattering Tomography for Label-Free, Deeper Tissue Volumetric Imaging

Legal Events

Date Code Title Description
121 Ep: the epo has been informed by wipo that ep was designated in this application

Ref document number: 10759330

Country of ref document: EP

Kind code of ref document: A2

NENP Non-entry into the national phase

Ref country code: DE

122 Ep: pct application non-entry in european phase

Ref document number: 10759330

Country of ref document: EP

Kind code of ref document: A2