WO2016151458A1 - Atropisomers of halogenated tetraphenylbacteriochlorins and chlorins and their use in photodynamic therapy - Google Patents
Atropisomers of halogenated tetraphenylbacteriochlorins and chlorins and their use in photodynamic therapy Download PDFInfo
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- A61K31/395—Heterocyclic compounds having nitrogen as a ring hetero atom, e.g. guanethidine or rifamycins
- A61K31/40—Heterocyclic compounds having nitrogen as a ring hetero atom, e.g. guanethidine or rifamycins having five-membered rings with one nitrogen as the only ring hetero atom, e.g. sulpiride, succinimide, tolmetin, buflomedil
- A61K31/409—Heterocyclic compounds having nitrogen as a ring hetero atom, e.g. guanethidine or rifamycins having five-membered rings with one nitrogen as the only ring hetero atom, e.g. sulpiride, succinimide, tolmetin, buflomedil having four such rings, e.g. porphine derivatives, bilirubin, biliverdine
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- A61K41/0057—Photodynamic therapy with a photosensitizer, i.e. agent able to produce reactive oxygen species upon exposure to light or radiation, e.g. UV or visible light; photocleavage of nucleic acids with an agent
- A61K41/0071—PDT with porphyrins having exactly 20 ring atoms, i.e. based on the non-expanded tetrapyrrolic ring system, e.g. bacteriochlorin, chlorin-e6, or phthalocyanines
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Definitions
- the present application relates to a pharmaceutical composition enriched with atropisomers of halogenated tetraphenylbacteriochlorins and chlorins, its preparation process and use in photodynamic therapy.
- PDT photodynamic therapy
- Sulfonamide tetraphenylchlorins and tetraphenylbacteriochlorins with halogen atoms in the ortho positions of the phenyl groups were found to have particularly useful properties for photodynamic therapy (PDT) (1-4).
- PDT is a medical treatment that combines the use of a photosensitizing drug, light of a wavelength absorbed by that drug, and molecular oxygen to generate reactive oxygen species (ROS) in the target tissue.
- ROS reactive oxygen species
- Tetraphenylporphyrins, tetraphenylchlorins and tetraphenylbacteriochlorins derivatives are often used as PDT photosensitizers (5).
- These molecules have phenyl-macrocycle single bonds with hindered rotations.
- the phenyl groups contain halogen atoms in the ortho positions, rotation about the single bond between the phenyl group and the macrocycle can be prevented or greatly reduced.
- the steric hindrance of the phenyl-macrocycle single bond rotation can, in principle, be overcome at high temperatures, the half-life of this rotation in halogenated tetraphenylporphyrins, tetraphenylchlorins and tetraphenylbacteriochlorins may be sufficiently long at room temperature and at body temperature to allow for the separation and independent use of stereoisomers possibly existing in this class of molecules.
- Stereoisomers are most frequently observed as a result of chiral atoms.
- the enantiomers or diastereomers resulting from the presence of chiral atoms are known to be at the origin of drugs with very differentiated interactions with biological targets.
- Halogenated tetraphenylbacteriochlorins, tetraphenylchlorins and tetraphenylbacteriochlorins do not have chiral atoms in the macrocycle or in the phenyl groups but have separable stereoisomers because the hindered phenyl-macrocycle single bond may generate a different spatial distribution of bulky substituents.
- the compounds of the invention present the first evidence that atropisomers of ⁇ / ⁇ ⁇ -halogenated tetraphenylchlorins and of ⁇ / ⁇ ⁇ -halogenated tetraphenylbacteriochlorins are separable and that the atropisomers possess differential therapeutic effect as photosensitizers for PDT.
- Atropisomers differing only by the conformation around a single bond may generate oxidative stresses with dramatically different therapeutic outcomes.
- the inventors of the present invention found that the enrichment of a mixture of atropisomers in the atropisomers with more voluminous groups on the same side of the plane defined by macrocycle can cure mice with subcutaneously implanted tumors in conditions where the mixture enriched in atropisomers with the same number of voluminous groups on both sides of the macrocycle plane do not cure any animals.
- the two regioisomers of benzoporphyrin derivative monoacid ring A which is known as verteporfin and is used in clinical practice as a photosensitizer in PDT of age-related macular degeneration, are equally potent photosensitizers of tumor cells in vitro and in vivo (11).
- the two regioisomers of verteporfin each consist of a racemic mixture of two enantiomers and all enantiomers have similar pharmacological activity (12).
- the present invention discloses for the first time therapeutically beneficial pharmaceutical compositions of atropisomers of halogenated tetraphenylchlorin or halogenated tetraphenylbacteriochlorin derivatives for use in PDT that are enriched in the atropisomer with all meta substituents of the phenyl group bound to the macrocycle on the same side of the plane defined by said macrocycle (atropisomer o ), such that the relative amount of the atropisomer cu in the pharmaceutical composition is more than 20%.
- the PDT efficacy in vitro of the preferred atropisomer cu can be orders of magnitude larger than the PDT efficacy in vitro of the least photoactive atropisomer ⁇ where the voluminous substituents in the meta positions of adjacent phenyl rings are in opposite sides of the plane defined by the macrocycle
- Figure 1 illustrates the various stereoisomers existing in sulfonamide halogenated tetraphenylbacteriochlorins with halogens in the ortho positions of the phenyl rings and sulfonamide groups in one of the meta positions.
- the three-dimensional orientation of the atoms of the stereoisomers illustrated in Figure 1 is different and can be interconverted by the rotation of phenyl-macrocycle single bonds. Such interconversion is very slow at room temperature, or at body temperature, because of the presence of halogen atoms (F, CI, Br) in the ortho positions of the phenyl rings, which allows for the separation and individual use of each one of the atropisomers.
- the bold lines in the molecular structures of Figure 1 indicate that the bolded atoms, and the groups attached thereto, are sterically restricted so as to exist above the plane approximately defined by the macrocycle ring, that is known to be somewhat distorted from the planar geometry but that nevertheless define a restricted spatial orientation of the groups R'.
- Atropisomers of halogenated tetraphenylporphyrins can be separated and may have different molar absorption coefficients in the red region of the electromagnetic spectrum (7, 9).
- a high molar absorption coefficient in the red where human tissues have higher transparency than in the other regions of the visible spectrum, is a desirable property for PDT because a dye that absorbs more light is more likely to initiate the cascade of photochemical reactions that generate ROS.
- atropisomers of halogenated tetraphenylporphyrins, tetraphenylchlorins and tetraphenylbacteriochlorins may have different excited state lifetimes (13) that may influence their PDT efficacy.
- the atropisomers in Figure 1 have different numbers and different orientations of polar groups on each side of the macrocycle and, consequently, have different polarities.
- the differences in polarity, shape and excluded molecular volume may provide a basis for their separation, and also have impact on their biological activity.
- differences in molar absorption coefficient, excited state lifetime, polarity and excluded molecular volume of the atropisomers may lead to differences in their interactions with molecular oxygen and with biological targets, and have a hitherto undisclosed impact in their PDT activity.
- the atropisomer of the present invention that has been shown to be the most efficient in photodynamic therapy is not the atropisomer that absorbs more light.
- Tetraphenylbacteriochlorins are relatively unstable (14, 15) and it could not be anticipated that the separation of their atropisomers would be feasible with cost-effective procedures.
- the introduction of halogen atoms in the ortho positions of the phenyl rings both hinders the rotation of the phenyl-macrocycle bond and stabilizes the macrocycle against oxidation.
- halogenated tetraphenylbacteriochlorins have uniquely stable atropisomers, with high phenyl- macrocycle rotational barriers and oxidation potentials as high as those of tetraphenylporphyrins.
- ROS there are various ROS that can be generated by photosensitizers.
- the most important ROS generated by bacteriochlorins in the presence of light of an appropriate wavelength and of molecular oxygen are: singlet oxygen (i.e., the lowest electronically excited state of molecular oxygen), superoxide ion, hydrogen peroxide and the hydroxyl radical (16).
- the hydroxyl radical is the most reactive of these ROS. It can react with a wide range of biological targets and it may also react with the photosensitizer leading to its bleaching.
- the electronically excited photosensitizer can be regarded as a very special catalyst that generates ROS when it encounters molecular oxygen. However, when the photosensitizer is bleached by the ROS it cannot generate more ROS.
- the efficacy of a photosensitizer is given by a delicate balance between the ability of a photosensitizer to interact strongly with molecular oxygen and its ability to survive that interaction without being bleached (4).
- the different spatial orientations of the meta substituents in the atropisomers o , ⁇ 3 ⁇ , ⁇ 2 ⁇ 2 and ⁇ may offer distinct and unsuspected interactions with molecular oxygen.
- This invention demonstrates for the first time that the atropisomers o , ⁇ 3 ⁇ , ⁇ 2 ⁇ 2 and ⁇ possess differential interactions with molecular oxygen and/or ROS manifested in different triplet lifetimes and/or photodecomposition quantum yields. These differences can explain the differential PDT activity of the atropisomers.
- Enriched atropisomer compound is understood as a mixture of atropisomers obtained in the synthesis of halogenated tetraphenylchlorins and halogenated tetraphenylbacteriochlorins that has been purified to partly remove the least photoactive ⁇ and 2 ⁇ 2 atropisomers present in the statistical atropisomer mixture obtained in the synthesis, where the tetraphenylchlorins and tetraphenylbacteriochlorins have halogen atoms in at least one of the ortho positions of the phenyl groups or, when both ortho positions are occupied by the same halogen atom, have different substituents in the two meta positions of the phenyl groups.
- the present invention provides a process for the preparation of a pharmaceutical compositions enriched in atropisomers cu and ⁇ 3 ⁇ which provides a new set of photoactive compounds with higher PDT activity. Included are pharmaceutical compositions where the atropisomers of Figure 1 with more than half of R' groups on the same side of the plane defined by the macrocycle constitute more than 70% of the total amount of atropisomers present in the composition.
- the process of preparation of the pharmaceutical composition of the invention take advantage of the ability to separate atropisomers of halogenated tetraphenylchlorins or halogenated tetraphenylbacteriochlorins at room temperature, or even at temperatures higher than room temperature, possibly in the presence of light and oxygen, using their differences in solubility, or in partition coefficients, in appropriate solvents, or different retention times in chromatography.
- the different spatial orientation of the polar groups present in the phenyl rings of tetraphenylporphyrins, tetraphenylchlorins or tetraphenylbacteriochlorins give rise to different polarities, shapes and excluded volumes, and allow for the chromatographic separations of the atropisomers.
- differences in solubility, or in partition coefficients, of the atropisomers in different solvents allow for changes in atropisomer composition using selective precipitation, preferential recrystallization, solvent extraction or simply washing the atropisomer mixture with an appropriate solvent.
- the present invention discloses the most efficient atropisomers of halogenated tetraphenylchlorins and tetraphenylbacteriochlorins for photodynamic therapy of hyperproliferative disorders and of bacterial and viral infections, and a pharmaceutical composition enriched in the referred two most efficient atropisomers of halogenated tetraphenylchlorins, namely ⁇ 3 ⁇ and cu presented in Formulae (I-C) and (I-D), respectively, characterized by having most of the voluminous substituents in the meta position of the phenyl roups on the same side of the macrocycle plane,
- the bold lines indicate that the bolded atoms, and the groups attached thereto, are sterically restricted so as to exist above the plane defined by the macrocycle ring;
- X 2 , X 4 , X 6 and X 8 are halogen (F, CI, Br);
- X 1 , X 3 , X 5 and X 7 are halogens (F, CI, Br) or hydrogen;
- Ri, R 2 , R 3 and R 4 are independently -OH, -OR or -S0 2 R", where R" are each independently chosen from -CI, -OH, -aminoacid, -OR, -NHR, or -NR 2 , where R are alkyl of 1 to 12 carbon atoms or R 2 represents cycloalkyl with 2 to 12 carbon atoms;
- R5, Re, R7 and R 8 are independently H, -OH, -OR, -CI, or -NHR where R are alkyl of 1 to 12 carbon atoms; or pharmaceutically acceptable salts thereof, wherein the relative amount of said atropisomers or their pharmaceutically acceptable salts, is more than 70% of the stereoisomers present in the said pharmaceutical composition.
- the pharmaceutical composition is enriched in the more efficient atropisomers of halogenated tetraphenylchlorins and tetraphenylbacteriochlorins, ⁇ 3 ⁇ and o , such that said efficient atropisomers or their pharmaceutically accepted salts constitute (combined) more than 70%, 75%, 80%, 85%, 90% or 95% of the atropisomers present in said pharmaceutical composition.
- the compounds of Formulae (I-C) and (I-D) may be bacteriochlorin derivatives havin the formulae:
- the bold lines indicate that the bolded atoms, and the groups attached thereto, are sterically restricted so as to exist above the plane defined by the macrocycle ring;
- X 2 are halogens (F, CI, Br);
- Suitable X 1 are hydrogens or halogens (F, CI, Br);
- R' are -SO2R", where R" are each independently chosen from -CI, -OH, - aminoacid, -OR, -NHR or -NR2, where R are alkyl of 1 to 12 carbon atoms or R 2 represents cycloalkyl with 2 to 12 carbon atoms;
- Preferred atropisomers of Formulae (III-C) and (III-D) are those wherein X 2 are fluorine or chlorine, and X 1 are fluorine or chlorine or hydrogen, and R' are -SO2NHR 11 where R n are alkyl of 1 to 6 carbon atoms.
- Specific preferred compounds of the invention include the 04 atropisomer of 5,10,15,20- tetrakis(2,6-difluoro-3-N-methylsulfamoylphenyl)bacteriochlorin, of formula LUZ11-D, and the ⁇ 3 ⁇ atropisomer of 5,10,15,20-tetrakis(2,6-difluoro-3-N-methylsulfamoylphenyl)bacteriochlorin, of formula LUZ11-C.
- the pharmaceutical composition is enriched in the most efficient atropisomer of halogenated tetraphenylchlorins and tetraphenylbacteriochlorins, o , which has all the voluminous substituents on the same side of the plane defined by the macrocycle, such that said efficient atropisomer or its pharmaceutically accepted salt constitutes more than 20% of the atropisomers present in the said pharmaceutical composition.
- the pharmaceutical composition is enriched in the second most efficient atropisomer of halogenated tetraphenylchlorins and tetraphenylbacteriochlorins, ⁇ 3 ⁇ , which has most of the voluminous substituents on the same side of the plane defined by the macrocycle, such that said efficient atropisomer or its pharmaceutically accepted salt constitutes more than 60% of the atropisomers present in the said pharmaceutical composition.
- the pharmaceutical composition is enriched in the second most efficient atropisomer of halogenated tetraphenylchlorins and tetraphenylbacteriochlorins, ⁇ 3 ⁇ , which has most of the voluminous substituents on the same side of the plane defined by the macrocycle, such that said efficient atropisomer or its pharmaceutically accepted salt constitutes more than 70%, 75%, 80%, 85%, 90% or 95% of the atropisomers present in the said pharmaceutical composition.
- the pharmaceutical composition is enriched in the most efficient atropisomer of halogenated tetraphenylchlorins and tetraphenylbacteriochlorins, o , such that said efficient atropisomer or its pharmaceutically accepted salt constitutes more than 20%, 30%, 40%, 50%, 60%, 70%, 75%, 80%, 85%, 90% or 95% of the atropisomers present in said pharmaceutical composition.
- the pharmaceutical composition further comprises a pharmaceutically accepted carrier.
- the present invention also discloses a process for preparation of a pharmaceutical composition enriched in the two most efficient atropisomers of halogenated tetraphenylchlorins and tetraphenylbacteriochlorins, namely atropisomers ⁇ 3 ⁇ and o , which have most of the voluminous substituents on the same side of the plane defined by the macrocycle, comprising an isolation step of the mixture of chlorin or bacteriochlorin atropisomers of formulae:
- Formula (I-C) atropisomer ⁇ 3 ⁇
- Formula (I-D) atropisomer o
- the bold lines indicate that the bolded atoms, and the groups attached thereto, are sterically restricted so as to exist above the plane defined by the macrocycle ring;
- X 2 , X 4 , X 6 and X 8 are halogen (F, CI, Br);
- X 1 , X 3 , X 5 and X 7 are halogens (F, CI, Br) or hydrogen;
- Ri, R 2 , R 3 and R 4 are independently -OH, -OR or -S0 2 R", where R" are each independently chosen from -CI, -OH, -aminoacid, -OR, -NHR or -NR 2 where R are alkyl of 1 to 12 carbon atoms or R 2 represents cycloalkyl with 2 to 12 carbon atoms; R5, Re, R7 and R 8 are independently H, -OH, -OR, -CI, or -NHR where R are alkyl of 1 to 12 carbon atoms; in which the atropisomers with most of the groups Ri, R 2 , R3 or R 4 on the same side of the macrocycle plane are, at least partially, separated by selective precipitation, chromatography, solvent extraction, thermal or photochemical rotational isomerization or selective photodecomposition.
- compositions that are enriched in the desired atropisomers of the formulae herein can be obtained by any method, including selective precipitation, chromatography, solvent extraction, thermal or photochemical rotational isomerization or selective photodecomposition, or may be enriched by combining isolated or enriched batches of a single atropisomer or combination of atropisomers to provide a composition having the desired ratio of atropisomers of the formulae herein.
- the enrichment of the pharmaceutical composition is possible since it is possible to partially separate the atropisomers ⁇ , ⁇ 2 ⁇ 3 ⁇ 4 ⁇ 3 ⁇ and 04 taking advantage of the difference in polarity and/or excluded volume and/or shape and/or photostability of the atropisomers that have most of the Ri, R 2 , R 3 or R 4 groups on the same side of the plane with respect to the atropisomers that have the same number of Ri, R 2 , R 3 or R 4 groups on each side of the plane.
- This separation is enabled by stability of each atropisomer together with the high barrier for the rotation of the macrocycle-phenyl bond in the atropisomers of Formula (I).
- the selective precipitation of the chlorin or bacteriochlorin atropisomers mixture dissolved first in a solvent of higher polarity and then selectively precipitated by the addition to the solution of a solvent with lower polarity leads to precipitate enriched in atropisomers ⁇ and ⁇ 2 ⁇ 2 and a solution enriched in the atropisomers ⁇ 3 ⁇ and 04 such that their concentrations add to at least 70% (e.g., at least 75%, 80%, 85%, 90%, 95%) of the concentration of all atropisomers present in solution.
- the atropisomer mixture may be first dissolved in a solvent of lower polarity and the selective precipitation achieved with the addition of a solvent of higher polarity.
- the solvent extraction comprises a first step of dissolving the chlorin or bacteriochlorin atropisomers mixture with a polar solvent; and a second step with the addition of a less polar solvent that forms a liquid-liquid phase separation with the polar solvent thus extracting the least polar atropisomers.
- the recrystallization comprises the formation of crystals containing the atropisomers with most of the groups Ri, R 2 , R 3 or R 4 on the same side of the macrocycle plane that is complementary to the atropisomer composition in the mother liquor.
- the thermal or photochemical rotational isomerization comprises a first step of preferentially binding at least one atropisomer of the chlorin or bacteriochlorin atropisomers mixture to a support to which said at least one atropisomer has high affinity; and a second step of providing enough thermal or radiative energy to promote the preferential rotational isomerization of the atropisomers less bound to the support.
- the support is preferentially silica gel and the atropisomer preferentially bounded to the support is the atropisomer with the Formula (I-D).
- the selective photodecomposition comprises a first step of dissolving the chlorin or bacteriochlorin atropisomers mixture in an aerated solvent; and a second step of irradiating with light that is absorbed by the atropisomer mixture to photodecompose to a greater extent the less photostable atropisomers.
- Atropisomers ⁇ 3 ⁇ and cu of the present invention lies in their ability to interact strongly with molecular oxygen to generate more reactive oxygen species and produce stronger oxidative stress locally. Another advantage is their increased photostability that increases the turnover of reactive oxygen species for more photons absorbed.
- compositions described herein for the treatment of hyperproliferative disorders including, but are not limited to, cancers or carcinomas, myelomas, psoriasis, macular degeneration, as well as precancerous conditions including, but not limited to Cervical dysplasia and Oral dysplasia.
- compositions described herein for the treatment of infectious diseases caused by microorganisms including, but not limited to viruses, bacteria, rickettsia, mycoplasma, protozoa, fungi; or parasites including, but not limited to generally microscopic or very small multicellular invertebrates, or ova or juvenile forms thereof.
- Figure 1 Atropisomers of halogenated tetraphenylbacteriochlorins, where the bold lines represent bonds that are above the macrocycle plane and define the orientation of the R group above or below that plane, as illustrated by the schemes below the structures.
- the group R' represents -SO2R", where R" are each independently chosen from -CI, -OH, -aminoacid, -OR, -NHR and -NR2 where R are alkyl of 1 to 12 carbon atoms or R 2 represents cycloalkyl with 2 to 12 carbon atoms.
- the atoms X 1 and X 2 are each independently chosen from halogen (F, CI, Br) and hydrogen atoms, provided that at least all X 2 are halogens.
- FIG. 6A, 6B, 6C and 6D HPLC chromatograms of LUZ11-A, LUZ11-B, LUZ11-C and LUZ11-D samples separated by preparative HPLC.
- Figure 8. ⁇ NMR spectrum of LUZ11-B sample.
- Figure 9. ⁇ - ⁇ spectrum of LUZ11-C sample.
- Figure 10. ⁇ - ⁇ spectrum of LUZ11-D sample.
- Figure 11 X-ray structure of the cu atropisomer of 5,10,15,20-tetrakis(2,6-difluoro-3-N- methylsulfamoylphenyl)bacteriochlorin, where the fluorine atoms are represented in yellow, the nitrogen atoms in blue, the sulfur atoms in green, the oxygen atoms in red and the carbon atoms in black.
- Figure 12 A) Absorption spectra in ethanol of LUZ11-A, LUZ11-B, LUZ11-C and LUZ11-D samples. B) Beer-Lambert plots of the same samples used to calculate the molar absorption coefficients of the samples assuming that all the mass weighted is the mass of LUZ11.
- FIG. 15 Survival fractions of HT-29 ceils for increasing photosensitizer doses of LUZ11, LUZ1 1-A, LUZ11-B, LUZ1 1 -C and LUZ1 1 -D samples and a constant light dose of 1 J/cm 2 , used to obtain the IC50 and IC90 values presented in Table 5.
- FIG. 17 Kaplan-Meier plot of CT26 tumor regrowth in BALB/C mice after PDT with 0.7 mg/kg of the photosensitizer indicated in the plot, and a light fluence of 41 J/cm 2 . Mice that remained tumor-free 60 days after the treatment were considered cured.
- Figure 18. Kaplan-Meier plot of CT26 tumor regrowth in BALB/C mice after PDT with 0.7 mg/kg of the atropisomer compositions indicated in the plot, and a light fluence of 41 J/cm 2 . Mice that remained tumor- free 60 days after the treatment were considered cured.
- Sample X and Sample Y are from Example 3.
- stereoisomer refers to compounds that have identical chemical constitution but differ with regard to the arrangement of atoms or of groups of atoms in the space.
- “Atropisomer” is a stereoisomer that results from slow axial rotation around a single bond, may interconvert thermally or photochemically but the interconversion is sufficiently slow at room temperature under ambient light to allow for analytical separation.
- Statistical mixture of atropisomers of halogenated tetraphenylporphyrins, tetraphenylchlorins or tetraphenylbacteriochlorins refers to the mixture of ⁇ , ⁇ 2 ⁇ 2 , 3 ⁇ and cu atropisomers obtained in the synthesis where said atropisomers are present in the following ratios: ( 2 ⁇ 2 )/( ⁇ ) between 1.5 and 2.5, ( ⁇ 3 ⁇ )/( ⁇ ) between 3.0 and 4.5, ((3 ⁇ 4)/( ⁇ ) between 0.6 and 1.2.
- compositions "enriched in atropisomers ⁇ u and ⁇ 3 ⁇ " are understood as mixtures of atropisomers that have a lower relative content of the least photoactive atropisomers ⁇ and ⁇ 2 ⁇ 2 with respect to the content of the most photoactive atropisomers cu and ⁇ 3 ⁇ present in the statistical mixture of atropisomers obtained in the synthesis of the photoactive compound, such that the atropisomers cu and ⁇ 3 ⁇ constitute more than 70% of said mixture.
- PDT efficacy is the ability of the photoactive compound to kill cells, bacteria or viruses, or to destroy diseased tissue, for a given drug and light dose. A higher PDT efficacy corresponds to a larger extent of cell death, microorganism death or of tissue necrosis for the same dose of photoactive compound and light.
- Light dose is a measure of the number of photons delivered to the target where the photoactive compound is present.
- LUZ11 is a code name for 5,10,15,20-tetrakis(2,6-difluoro-3-N- methylsulfamoylphenyl)bacteriochlorin.
- LUZ11-A is a sample substantially composed by the ⁇ atropisomer of LUZ11.
- LUZ11-B is a sample substantially composed by the ⁇ 2 ⁇ 2 atropisomer of LUZ11.
- LUZ11-C is a sample substantially composed by the ⁇ 3 ⁇ atropisomer of LUZ11.
- LUZ11-D is a sample substantially composed by the cu atropisomer of LUZ11.
- Substantially composed in this context refers a composition where the atropisomer is at least 80% of the atropisomers present in the sample.
- HPLC is used to mean High Pressure Liquid Chromatography.
- hyperproliferative disorders means those condition disorders sharing as underlying pathology excessive cell proliferation caused by unregulated or abnormal cell growth, and include uncontrolled angiogenesis.
- hyperproliferative disorders include, but are not limited to, cancers or carcinomas, myelomas, psoriasis, macular degeneration.
- “Hyperproliferative tissue” as used herein means tissue that grows out of control and includes tumors and unbridled vessel growth such as blood vessel growth found in age-related macular degeneration.
- infectious agent denotes invading microorganisms or parasites.
- microorganism denotes virus, bacteria, rickettsia, mycoplasma, protozoa, fungi and like microorganisms
- parasite denotes infectious, generally microscopic or very small multicellular invertebrates, or ova or juvenile forms thereof.
- the invention also provides a pharmaceutical composition, comprising an effective amount a compound described herein (e.g., atropisomers of the formulae herein) and a pharmaceutically acceptable carrier.
- a pharmaceutical composition comprising an effective amount a compound described herein (e.g., atropisomers of the formulae herein) and a pharmaceutically acceptable carrier.
- Actual dosage levels and time course of administration of the active ingredients in the pharmaceutical compositions of this invention may be varied so as to obtain an amount of the active ingredient which is effective to achieve the desired therapeutic response for a particular patient, composition, and mode of administration, without being toxic (or unacceptably toxic) to the patient.
- At least one compound according to the present invention is administered in a pharmaceutically effective amount to a subject in need thereof in a pharmaceutical carrier by intravenous, intramuscular, subcutaneous, intralesional, or intracerebroventricular injection or by oral administration or topical application.
- a compound of the invention may be administered alone or in conjunction with a second, different therapeutic.
- in conjunction with is meant together, substantially simultaneously or sequentially.
- a compound of the invention is administered acutely.
- the compound of the invention may therefore be administered for a short course of treatment, such as for about 1 day to about 1 week.
- the compound of the invention may be administered over a longer period of time to ameliorate chronic disorders, such as, for example, for about one week to several months depending upon the condition to be treated.
- pharmaceutically effective amount as used herein is meant an amount of a compound of the invention (e.g., atropisomers of the formulae herein), high enough to significantly positively modify the condition to be treated but low enough to avoid serious side effects (at a reasonable benefit/risk ratio), within the scope of sound medical judgment.
- a pharmaceutically effective amount of a compound of the invention will vary with the particular goal to be achieved, the age and physical condition of the patient being treated, the severity of the underlying disease, the duration of treatment, the nature of concurrent therapy and the specific compound employed. For example, a therapeutically effective amount of a compound of the invention administered to a child or a neonate will be reduced proportionately in accordance with sound medical judgment.
- the effective amount of a compound of the invention will thus be the minimum amount which will provide the desired effect.
- the "pharmaceutically effective amount” of the pharmaceutical composition or compound is partially dependent upon other factors such as light dose and oxygen, both of which are required to achieve a therapeutic result.
- Other important factors that contribute to the determination of the "pharmaceutically effective amount" of drug, light, and oxygen include drug-to-light intervals (the time between drug administration and illuminating the tissue).
- Drug-to-light interval is important because, for example, administering a higher drug dose of 50 mg/kg and illuminating the tissue one week later with a light dose of 500 J/cm 2 may be as inefficient or ineffective as using a drug dose of 0.01 mg/kg and illuminating the tissue 10 minutes after administration at a light dose of 0.1 J/cm 2 .
- the drug elimination (metabolism) by the organism between the administration of the drug and the illumination may decrease the effectiveness of the therapy when the drug-to-light interval increases (becomes longer).
- increasing the drug-to-light interval may lead to a more selective therapy and fewer adverse effectives.
- drug-to-light interval is an important factor to consider when determining the "pharmaceutically effective amount" of the compositions of the present invention.
- the irradiated tissue is the primary target of the therapy and will die first, although systemic effects (outside the field of irradiation) may also be observed as a result of the stimulation of the host immune system and/or other cascades of biological effects elicited by the effect of the photodynamic treatment in the primary target.
- the selection of the margin is as important in treating a subject or patient using photodynamic therapy, as it would be using surgical treatment.
- the compound e.g., atropisomers of the formulae herein
- the active ingredients which comprise a compound of the invention may be required to be coated in a material to protect the compound from the action of enzymes, acids and other natural conditions which may inactivate the compound.
- the compound can be coated by, or administered with, a material to prevent inactivation or to improve dissolution.
- the compound may be administered parenterally or intraperitoneally.
- Dispersions can also be prepared, for example, in glycerol, liquid polyethylene glycols, and mixtures thereof, and in oils.
- the pharmaceutical forms suitable for injectable use include sterile solutions (where soluble) or dispersions and sterile powders for the extemporaneous preparation of sterile injectable solutions or dispersions.
- the carrier can be a solvent or dispersion medium containing, for example, water, DMSO, ethanol, polyol (for example, glycerol, propylene glycol, liquid polyethylene glycol, and the like), suitable mixtures thereof and vegetable oils.
- the proper fluidity can be maintained, for example, by the use of a coating such as lecithin, by the maintenance of the required particle size in the case of dispersion.
- isotonic agents for example, sugars or sodium chloride.
- Sterile injectable solutions are prepared by incorporating the compound of the invention in the required amount in the appropriate solvent with various of the other ingredients enumerated above, as required, followed by filter sterilization.
- dispersions are prepared by incorporating the various sterilized compounds into a sterile vehicle which contains the basic dispersion medium and the required other ingredients from those enumerated above.
- the preferred methods of preparation are vacuum-drying and the freeze-drying technique which yields a powder of the active ingredient plus any additional desired ingredient from previously sterile-filtered solution thereof.
- the compound may be incorporated with excipients and used in the form of ingestible tablets, buccal tablets, troches, capsules, elixirs, suspensions, syrups, wafers, and the like.
- Compositions or preparations according to the present invention are prepared so that an oral dosage unit form contains compound concentration sufficient to treat a disorder in a subject.
- substances which can serve as pharmaceutical carriers are sugars, such as lactose, glucose and sucrose; starches such as corn starch and potato starch; cellulose and its derivatives such as sodium carboxymethycellulose, ethylcellulose and cellulose acetates; powdered tragancanth; malt; gelatin; talc; stearic acids; magnesium stearate; calcium sulfate; vegetable oils, such as peanut oils, cotton seed oil, sesame oil, olive oil, corn oil and oil of theobroma; polyols such as propylene glycol, glycerine, sorbitol, mannitol, and polyethylene glycol; agar; alginic acids; pyrogen-free water; isotonic saline; and phosphate buffer solution; skim milk powder; as well as other non-toxic compatible substances used in pharmaceutical formulations such as Vitamin C, estrogen and echinacea, for example.
- Wetting agents and lubricants such as sodium lauryl
- the invention provides a composition having a dosage range or a method as described above, wherein the effective amount of the compound delineated herein (e.g., atropisomers of the formulae herein) ranges from about 0.005 ⁇ g/kg to about 200 mg/kg. In certain embodiments, the effective amount of the compound of the formulae herein (e.g., atropisomers of the formulae herein) ranges from about 0.02 mg/kg to about 20 mg/kg. In a further embodiment, the effective amount of compound delineated herein ranges from about 0.2 mg/kg to 2 mg/kg.
- the effective amount of the compound delineated herein ranges from about 0.005 ⁇ g/kg to about 200 mg/kg. In certain embodiments, the effective amount of the compound of the formulae herein (e.g., atropisomers of the formulae herein) ranges from about 0.02 mg/kg to about 20 mg/kg. In a further embodiment, the effective amount of compound delineated herein ranges from about
- the effective amount of the compound delineated herein ranges from about 0.2 mg/kg to 1 mg/kg and the light dose ranges from 30 to 300 J/cm2. In a further embodiment, the effective amount of the compound delineated herein ranges from about 0.5 mg/kg to 2 mg/kg and the light dose ranges from 20 to 150 J/cm2. In a further embodiment, the effective amount of the compound delineated herein ranges from about 0.05 mg/kg (50 ng/mL) to 5 mg/kg, the light dose is between 3 and 300 J/cm2 and the drug-to-light interval is selected from concomitant with the administration of the drug to one week after the administration of the drug.
- the invention provides a method as described above wherein the effective amount of the compound delineated herein (e.g., atropisomers of the formulae herein), in the target tissue at the time of irradiation, ranges from about 0.1 nM to about 50 ⁇ . In certain embodiments, the effective amount ranges from about 10.0 pM to about 10 nM. In another embodiment, the effective amount ranges from about 0.2 nM to about 2 nM. In another embodiment, the effective amount ranges from about 0.1 ⁇ to about 100 ⁇ .
- the effective amount of the compound delineated herein e.g., atropisomers of the formulae herein
- kits comprising a pharmaceutical composition delineated herein and instructions for administration of the composition.
- the kit can provide the pharmaceutical composition in any suitable container (i.e., vial, bottle, syringe, ampoule, tube) and include instructions such as for photodynamic therapy/administration (e.g., light exposure instructions, wavelength exposure and duration instructions).
- Another object of the present invention is the use of a compound as described herein (e.g., atropisomers of the formulae herein) in the manufacture of a medicament for use in the treatment of a disorder or disease described herein.
- a compound as described herein e.g., atropisomers of the formulae herein
- Another object of the present invention is the use of a compound as described herein (e.g., atropisomers of the formulae herein) for use in the treatment of a disorder or disease described herein.
- porphyrin precursors may be prepared using a process, described in patents PCT/EP/012212 (i) and PCT/PT2009/000057 (2), comprising the following steps:
- X 2 , X 4 , X 6 and X 8 are halogen (F, CI, Br);
- X 1 , X 3 , X 5 and X 7 are halogens (F, CI, Br) or hydrogen;
- Ri, R 2 , R 3 and R 4 are independently -OH, -OR or -S0 2 R", where R" are each independently chosen from -CI, -OH, -aminoacid, -OR, -NHR, -NR 2 where R are alkyl of 1 to 12 carbon atoms or R 2 represents cycloalkyl with 2 to 12 carbon atoms;
- R5, Re, R7 and R 8 are independently H, -OH, -OR, -CI, or -NHR where R are alkyl of 1 to 12 carbon atoms, to the chlorin derivative and/or bacteriochlorin derivatives of formula
- the hydrazide is /?-toluenesulphonyl hydrazide, 4-chlorobenzenesulfonic hydrazide, 4,4'-oxybis(benzenesulfonyl) hydrazide, benzenesulfonyl hydrazide, 4-methoxybenzenesulfonyl hydrazide or benzoic hydrazide.
- the sterically hindered base is selected from l,4-diazabicyclo[2.2.2]octane (DABCO) and l,8-Diazabicyclo[5.4.0]undec-7-ene (DBU).
- DABCO l,4-diazabicyclo[2.2.2]octane
- DBU l,8-Diazabicyclo[5.4.0]undec-7-ene
- the reduction step is carried out at a temperature from 70 to 200 °C.
- the reduction step is carried out at a temperature of at least 100 °C.
- the reduction step is carried out for at least 5 minutes.
- the reduction step is carried out under an inert atmosphere.
- the option of carrying out the reaction in the absence of solvents requires the use of a temperature that is above the melting point of one of the reactants, such that the other reactant or reactants are partially dissolved, or dispersed, in the melted one.
- the solid-state reaction is suitably carried out above the melting point of the hydrazide.
- Elemental analyses were carried out on a Leco TruSpec CHNS elemental analyzer. l H- NMR and spectra were recorded on a Bruker Avance 400 MHz. 1H assignments were made using 2D COSY and NOESY experiments. ESI-FIA TOF High Resolution Mass Spectrometry data were acquired using a Micromass Autospec mass spectrometer. HPLC Shimadzu Prominence equipped with a Diode Array (model SPD 20 AV). Separations were followed at 743 nm, 23 °C on a semi-preparative column Inertsil-Phenyl (250* 10mm; 5 ⁇ ).
- Room-temperature singlet-oxygen phosphorescence was measured at 1270 nm with a Hamamatsu R5509-42 photomultiplier, cooled to 193 K in a liquid nitrogen chamber (Products for Research model PC176TSCE005), following laser excitation of aerated solutions at 355 nm, using an adapted Applied Photophysics spectrometer.
- the irradiation of bacteriochlorins in the photobleaching experiments employed CW laser emitting at 749 +/-3 nm from Omicron Laserage.
- a suitable amount of each fraction was dissolved in analytical solvent to a concentration of 0.025 mg/ml.
- a 15 ⁇ fraction of the prepared solution was then analysed by HPLC with UV-Vis detection.
- the atropisomers separation was achieved using a Zorbax XDB Eclipse Phenyl column (150*4.6 mm; 5 ⁇ ) and a gradient program of two mobile phases: methanol (mobile phase A) and a solution of ammonium acetate buffer, 100 mM, pH 9.5 with methanol at 25:75, v/v (mobile phase B) pumped at a constant flow rate of 1.0 ml/min.
- the column temperature was kept constant at 20 °C.
- the relative amount of the four LUZ11 atropisomers was determined at 743 nm.
- Photobleaching experiments were conducted in methanokPBS (3:2) solutions, where PBS refers to phosphate -buffered saline solutions.
- the solutions were irradiated in a cuvette with an optical path of 1 cm using a CW laser emitting at 749+3 nm from Omicron Laserage.
- the total output power was 640 mW.
- the absorbance was collected in time intervals from few minutes up to hours of irradiation.
- the initial absorbances of the compounds were ca. 1.0.
- the triplet-triplet absorption spectra and the triplet lifetimes of the atropisomers ( ⁇ ) were measured with the transient absorption spectra equipment described above, with excitation at 355 nm, where the solutions had absorbances between 0.25 and 0.30.
- HT-29 human colon carcinoma
- CT26 mae colon carcinoma
- FBS heat-inactivated Fetal Bovine Serum
- Cells were irradiated (each well individually) with a costumer-made diode laser model LDM750.300.CWA.L.M with controller 1201-08P and laser head 1201-08D (Omicron, Rodgau, Germany) emitting at 749 nm.
- the laser beam was coupled to an optic fiber with an adjustable divergent lens at the end of the fiber, which was fixed on a support and directed perpendicularly to the plate with the cells.
- the fiber lens was adjusted in order for the irradiation area to exactly match the bottom area of the plate wells, ensuring that each well was individually and completely irradiated with a power density of 8.0 mW/cm 2 at the plate level.
- Laser power measurement was performed with a LaserCheck handheld power meter (Coherent, Inc., Santa Clara, CA, USA).
- the irradiation time corresponding to a light dose of 1.0 J/cm 2 is 125 seconds.
- resazurin sodium salt Sigma-Aldrich, Steinhelm, Germany
- stock solution 0.1 mg/ml in PBS
- 200 ⁇ were added to the cells in each well. Plates were incubated for 3-4 h at 37 °C.
- the absorbance values of each well were measured at 540 nm and 630 nm using a microplate reader Multiskan Ex (Thermo - Electron Corporation, Vartaa, Finland).
- the cell viability results are expressed as average + SD of the replicated conditions from at least two independent experiments.
- the cell viability studies inform on the cytotoxicity of the drugs. This was quantified by expressing cell death relatively to untreated cells (% of control cells, kept in the dark). The results were plotted as dose-response curves (% of cell viability as a function of the concentration of the drug), which allow the determination of the concentration that reduces cell viability in 50% (IC50) and the concentration that reduces cell viability in 90% (IC90) under a given light dose.
- the mice used in the present study were BALB/c females weighing 20-25 g (Charles River Laboratories, Barcelona, Spain). The mice were kept on a standard laboratory diet with free access to drinking water. The use of these animals for experimental purposes was approved by the National Veterinary Authority (DGVA authorization no.
- CT26 cells CTL-2638TM, ATCC-LCG Standards, Barcelona, Spain
- the tumors were treated 8-10 days after the inoculation, when their diameters reached approximately 5 mm.
- Mice were treated with a vascular-PDT protocol, that started with the intravenous injection of the compound (0.7 mg/kg) followed 15 minutes later by the irradiation of the tumor with the Omicron diode laser at 749 nm with a laser power of 173 mW.
- the laser beam was coupled to an optic fiber, with a fixed divergent lens, that was positioned perpendicularly to the tumor surface, in order to irradiate an area of 1.33 cm 2 and deliver a total light dose of 55 J.
- the absorptivities of the compounds were measured at several concentrations in the ⁇ , and in all cases were observed to follow the Beer-Lambert law. Additionally, the wavelength of maximum absorption (Amax) in the infrared did not vary in the concentration range studied. This is indicative of little aggregation between the molecules, which exist mostly as monomers at these concentrations in the solvents studied.
- Table 1 presents infrared molar absorption coefficients (fimax) and wavelength maxima in ethanol obtained for 5,10,15,20-tetrakis(2,6-difluoro-3-N- methylsulfamoylphenyl)bacteriochlorin (sample LUZ11) and its purified atropisomers (samples LUZ11-A, LUZ11-B, LUZ11-C, LUZ11-D).
- This bacteriochlorin has an intense light absorption in the near infrared, where human tissues are more transparent than in the visible, which is a preferred photosensitizer feature for PDT.
- the atropisomers have small differences in their s ax.
- £ ax decreases by 3% from samples LUZ11-A to LUZ11-D.
- the same table also presents triplet lifetimes ( ⁇ ) in aerated ethanol solutions, photodecomposition quantum yield (OPD) in aerated methanokPBS (3:2) solutions and singlet oxygen quantum yields ( ⁇ ) in aerated ethanol solutions.
- the transient lifetimes were measured at 400, 610 and 790 nm. All triplet decays were clearly mono-exponential and in air-saturated ethanol the triplet lifetimes were in the range of 200-300 nanoseconds. Such values are consistent with diffusion limited energy transfer from the triplet state of the photosensitizer to molecular oxygen through a charge-transfer interaction (4).
- the photodecomposition utilized a CW laser emitting at 749+3 nm and total power of 640 mW. All compounds followed a mono-exponential decrease in their absorptivity intensities.
- This is assigned to the differentiation between the position of the reduced pyrrole group of the macrocycle between two phenyl groups with voluminous substituents on the same side of the macrocycle plane, and the position of the reduced pyrrole group between two phenyl groups with voluminous substituents in different sides of that plane.
- This example illustrates that it is possible to separate the atropisomers of tetraphenylchlorin derivatives at 40 °C by virtue of an unexpected combination of the stability of the tetraphenylchlorins and slowness of rotation of the macrocycle - phenyl bonds at this temperature.
- a 20 ⁇ fraction of the prepared solution was then analysed by HPLC with UV-Vis detection.
- the atropisomers separation was achieved using an Inertsil Phenyl column (250*4.6 mm; 5 ⁇ ) and a gradient program of three mobile phases: methanol (mobile phase A), a trimethylamine solution, pH7.0 (mobile phase B) and a mixture of triethylamine solution pH7.0 with methanol (25:75, v/v) (mobile phase C) pumped at a constant flow rate of 0.5 ml/min).
- the column temperature was kept constant at 60 °C.
- This example illustrates that it is possible to separate the atropisomers of tetraphenylbacteriochlorins derivatives at 60 °C by virtue of a very unexpected combination of the stability of the tetraphenylbacteriochlorins and slowness of rotation of the macrocycle-phenyl bonds at this temperature.
- NMR *H (400 MHz, CDC1 3 ) ⁇ ppm : 8.24 (m, 4H, yff-H); 8.01-7.99 (m, 4H, Ar-H); 7.39-7.31 (m, 4H, Ar-H); 4.76-4.67 (m, 4H, NH); 4.05 (s,8H, jff-H); 2.81-2.70 (m, 12H, CH 3 ); -1.39 (s, 2H, NH).
- NMR spectrum is shown in Figure 5.
- Figures 6 A, 6B, 6C and 6D present the HPLC chromatograms of the separated LUZl l-A, LUZl l-B, LUZl l-C and LUZl l-D samples obtained with the method described above. The four samples were also characterized by NMR spectroscopy, mass spectrometry and elemental analysis. The results are presented below:
- a crystal of the LUZl l-D atropisomer was obtained for X-ray structural determination in order to confirm the assignment.
- the X-ray structure obtained from the LUZl l-D is shown in Figure 11 and confirms that this is the 04 atropisomer.
- the photophysical properties of the samples LUZl l-A, LUZl l-B, LUZl l-C and LUZl l-D were determined using the instruments and methods described above.
- Figure 12 presents the absorption spectra of the four samples. Table 1 collects the relevant data.
- Figure 12 also presents the Beer-Lambert plots used to obtain the molar absorption coefficients of each sample, assuming that all the mass weighted to calculate the concentrations is the mass of LUZ11 atropisomers.
- Figure 13 presents the HPLC chromatograms with detection at 743 nm, described in the Methods section, revealing that the peaks of atropisomers ⁇ and ⁇ 2 ⁇ 2 increase in sample X with respect to the original sample of LUZ11, and that the peak of the atropisomer cu increases in sample Y with respect to the original sample of LUZ11.
- Table 4 presents the relative amounts of the fours atropisomers present in the initial LUZ11 sample and in fractions X and Y.
- sample Y is a composition where the atropisomers with most R' groups in the same side of the plane defined by the macrocycle constitute more than 70% of the total amount of atropisomers present in the composition.
- the relative amount of atropisomers ⁇ + ⁇ in a sample can constitute any value up to 100% of the total amount of atropisomers present in the composition.
- EXAMPLE 4 DIFFERENTIAL STABILITY OF ATROPISOMERS OF HALOGENATED AND SULFONATED BACTERIOCHLORINS IN THE PRESENCE OF INFRARED LIGHT ABSORBED
- LUZ11-A, LUZ11-B, LUZ11-C and LUZ11-D samples obtained in Example 2 above were independently dissolved in PBS:methanol (2:3) solutions, transferred to 1 cm quartz cells and their absorption spectra were registered. Each quartz cell was sequentially placed in the beam of the 749 nm Omicron diode laser, previously unfocused to have a beam diameter coincident with the window of the quartz cell. The laser power measured under these conditions was 640 mW. The irradiation was interrupted at regular time intervals and a new absorption spectrum was registered. The photobleaching follows the kinetics of a first-order reaction in the time window of the experiment.
- Figure 14 shows the decay of the absorptions at the peak of highest wavelength of absorption of the samples as a function of the irradiation time.
- the half-lives of LUZ11-A, LUZ11-B, LUZ11-C and LUZ11-D samples under these conditions are 4.6, 4.8, 6.4 and 6.5 minutes respectively.
- the photodecomposition quantum yields were calculated as the initial rate of disappearance of the photosensitizer molecule divided by the initial rate of absorption of photons. The results of these calculations are presented in Table 1.
- the most stable atropisomer is o , followed by ⁇ 3 ⁇ .
- the photosensitizing activity of the original LUZ11 sample and of the LUZ11-A, LUZ11- B, LUZ11-C and LUZ11-D samples obtained in Example 2 were measured with the materials and methods described before. HPLC chromato grams with detection at 380 nm indicate that the content of LUZ11 samples enriched in the separated atropisomer samples is higher than 80%. The small differences in purity do not bias the phototoxicity results.
- each LUZ11 atropisomer presents a distinct long-term efficacy profile in the treatment of a mouse tumor model with PDT.
- the tumor model was BALB/c mice with subcutaneous CT26 tumor.
- CT26 cells were cultured in DMEM medium supplemented with fetal bovine serum and antibiotics. The cells were grown at 37 °C in humidified atmosphere containing 5% C0 2 .
- the CT26 cells (-350,000) were taken up in 0.1 ml PBS and implanted subcutaneously to the right thigh of the BALB/C mice. The tumors grew to reach 5 mm in diameter in about 8 to 10 days after the implantation. The treatment was initiated when the tumor attained 5 mm in diameter in each animal.
- mice were injected with a dose of 0.7 mg/kg of the photosensitizer in a vehicle containing Cremophor EL (Macrogolglycerol Ricinoleate), ethanol and 0.9% NaCl saline solution in the proportions 0.1:0.5:99.4 for LUZl l and LUZ11-A and 0.5:0.5:99.0 for LUZ11-B, LUZ11-C and LUZ11-D, and treated as described in the Methods section.
- the light fluence employed in the treatment was 41 J/cm 2 (i.e., 50 J on a 1.33 cm 2 surface).
- the doses of each compound were normalized taking into account the LlJZl 1 content of each sample.
- This example shows that a pharmaceutical composition enriched in the more photoactive atropisomers is preferred for PDT because it presents the best long-term efficacy profile in the treatment of a mouse tumor model with PDT.
- the mouse and tumor model is the same as in Example 6.
- PDT was also performed with the same protocol: intravenous injection of a nominal photosensitizer dose of 0.7 mg/kg followed 15 minutes later with the irradiation of a 1.33 cm 2 circle with 55 J.
- This nominal concentration, by weight of the sample corresponds to a concentration of 0.52 mg/kg of the actual amount of bacteriochlorin stereoisomers present in the samples LUZl l, LUZl l -X, relative to sample X, and LUZl l -Y, relative to sample Y.
- the vehicle employed for the intravenous administration was the same as in Example 6 but the samples X and Y of Example 3 were employed, in parallel with the LUZl l sample characterized in Table 4.
- Figure 18 presents the Kaplan-Meier plot for the LUZl l sample, and samples X and Y.
- Figure 18 shows that with the original fraction of LUZ11 is not possible to obtain long-term cures with this treatment protocol. The absence of long-term cures was also observed in the group treated with sample X. Furthermore, the median survival time in the treatment with sample X was 2 days shorter (18 vs. 20 days) than the medium survival time with the LUZl l sample. On the other hand, the group treated with sample Y had a longer median survival time and attained a cure rate of 50%.
- EXAMPLE 8 ISOLATION OF LUZl l-C ( ⁇ 3 ⁇ ) ATROPISOMER BY REVERSE PHASE CLASSICAL COLUMN CHROMATOGRAPHY AND SEMI-PREPARATIVE HPLC
- the purification of LUZl l-C was performed in two steps: i) sample enrichment on ⁇ 3 ⁇ from the mixture of the four atropisomers ( ⁇ , ⁇ 2 ⁇ 2 , ⁇ 3 ⁇ , ⁇ 4 and synthesis impurities) by using reverse phase silica gel (C-18) gravity chromatography, as stationary phase, with a mixture of MeOH/CN 3 CN/H 2 0 (40:40:20, v/v) as mobile phase; ii) purification of the previously obtained ⁇ 3 ⁇ enriched mixture by semi-preparative HPLC.
- LUZl l (lg; assay 75%) was dissolved in acetonitrile (10 mL) and methanol (10 mL), and the mixture was sonicated for 5 min. After total solubilization, 5 mL of water was slowly added.
- the mobile phase mixture was slowly eluted through the column and the fractions containing the ⁇ 3 ⁇ atropisomer were collected. During the whole chromatographic procedure, the glass column chromatography was protected from light as well as the collected fractions. The organic solvent was removed in the rotary evaporator (T ⁇ 35 °C). The mixture was transferred to an extraction funnel and LUZl l-C was recovered by solvent- solvent extraction using dichloromethane. The organic phase was dried and solvent was removed by rotary evaporation (T ⁇ 35 °C). The flask with product was connected to a vacuum pump for at least 72 h at 18-23°C protected from light. About 300 mg of LUZ11-C was obtained. ii) LUZ11 -C ( ⁇ 3 ⁇ ) isolation by semi-preparative HPLC
- Mobile phase Mobile Phase A: Acetonitrile Gradient Grade
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Priority Applications (12)
| Application Number | Priority Date | Filing Date | Title |
|---|---|---|---|
| ES16716286T ES2788725T3 (en) | 2015-03-20 | 2016-03-18 | Atropisomers of tetraphenylbacteriochlorins and halogenated chlorins and their use in photodynamic therapy |
| DK16716286.6T DK3271363T3 (en) | 2015-03-20 | 2016-03-18 | ATROPISOMES OF FLOUR-CONTAINED TETRAPHENYL BACTERY CHLORINE AND CHLORINE AND THEIR USE IN PHOTODYNAMIC THERAPY |
| EP16716286.6A EP3271363B1 (en) | 2015-03-20 | 2016-03-18 | Atropisomers of fluorinated tetraphenylbacteriochlorins and chlorins and their use in photodynamic therapy |
| CA2980251A CA2980251C (en) | 2015-03-20 | 2016-03-18 | Atropisomers of halogenated tetraphenylbacteriochlorins and chlorins and their use in photodynamic therapy |
| PL16716286T PL3271363T3 (en) | 2015-03-20 | 2016-03-18 | Atropisomers of fluorinated tetraphenylbacteriochlorins and chlorins and their use in photodynamic therapy |
| BR112017020052-0A BR112017020052B1 (en) | 2015-03-20 | 2016-03-18 | HALOGENATED TETRAPHENYLBACTERIOCHLORINES AND CHLORINE ATROPISOMERS AND THEIR USE IN PHOTODYNAMIC THERAPY |
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| Publication number | Priority date | Publication date | Assignee | Title |
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| KR20200035832A (en) * | 2018-09-27 | 2020-04-06 | 주식회사 엘지화학 | Antibacterial polymer composition |
| WO2023100829A1 (en) | 2021-11-30 | 2023-06-08 | 第一三共株式会社 | Protease-degradable musk antibody |
| WO2023153442A1 (en) | 2022-02-09 | 2023-08-17 | 第一三共株式会社 | Environmentally responsive masked antibody and use thereof |
| CN121085754A (en) * | 2025-11-10 | 2025-12-09 | 国网四川省电力公司电力科学研究院 | Diagnostic agent suitable for overheat fault early warning of electric power oil-filled equipment |
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| CN109651383B (en) * | 2019-01-25 | 2021-11-16 | 华东理工大学 | Compounds for photosensitizers and uses thereof |
| CN112300778B (en) * | 2019-07-30 | 2023-11-03 | 国家纳米科学中心 | A circularly polarized luminescent substance and its preparation method and application |
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| Publication number | Priority date | Publication date | Assignee | Title |
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| KR20200035832A (en) * | 2018-09-27 | 2020-04-06 | 주식회사 엘지화학 | Antibacterial polymer composition |
| KR102646264B1 (en) | 2018-09-27 | 2024-03-11 | 주식회사 엘지화학 | Antibacterial polymer composition |
| WO2023100829A1 (en) | 2021-11-30 | 2023-06-08 | 第一三共株式会社 | Protease-degradable musk antibody |
| WO2023153442A1 (en) | 2022-02-09 | 2023-08-17 | 第一三共株式会社 | Environmentally responsive masked antibody and use thereof |
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| RU2712266C2 (en) | 2020-01-28 |
| PT3271363T (en) | 2020-04-15 |
| RU2017134717A3 (en) | 2019-09-09 |
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| BR112017020052A2 (en) | 2018-07-17 |
| CA2980251C (en) | 2023-08-29 |
| JP2018509454A (en) | 2018-04-05 |
| PL3271363T3 (en) | 2020-06-29 |
| JP6781710B2 (en) | 2020-11-04 |
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