GB2121208A - Device for handling thin sections, in particular cryosections, and process for freeze-drying thin sections - Google Patents

Device for handling thin sections, in particular cryosections, and process for freeze-drying thin sections Download PDF

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Publication number
GB2121208A
GB2121208A GB08314246A GB8314246A GB2121208A GB 2121208 A GB2121208 A GB 2121208A GB 08314246 A GB08314246 A GB 08314246A GB 8314246 A GB8314246 A GB 8314246A GB 2121208 A GB2121208 A GB 2121208A
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United Kingdom
Prior art keywords
holder
baseplate
carrier grid
plate
freeze
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.)
Granted
Application number
GB08314246A
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GB2121208B (en
GB8314246D0 (en
Inventor
Kare Tvedt
Guennar Kopstad
Olav Haugen
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C Reichert Optische Werke AG
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C Reichert Optische Werke AG
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Publication of GB8314246D0 publication Critical patent/GB8314246D0/en
Publication of GB2121208A publication Critical patent/GB2121208A/en
Application granted granted Critical
Publication of GB2121208B publication Critical patent/GB2121208B/en
Expired legal-status Critical Current

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Classifications

    • HELECTRICITY
    • H01ELECTRIC ELEMENTS
    • H01JELECTRIC DISCHARGE TUBES OR DISCHARGE LAMPS
    • H01J37/00Discharge tubes with provision for introducing objects or material to be exposed to the discharge, e.g. for the purpose of examination or processing thereof
    • H01J37/02Details
    • H01J37/20Means for supporting or positioning the object or the material; Means for adjusting diaphragms or lenses associated with the support
    • GPHYSICS
    • G01MEASURING; TESTING
    • G01NINVESTIGATING OR ANALYSING MATERIALS BY DETERMINING THEIR CHEMICAL OR PHYSICAL PROPERTIES
    • G01N1/00Sampling; Preparing specimens for investigation
    • G01N1/28Preparing specimens for investigation including physical details of (bio-)chemical methods covered elsewhere, e.g. G01N33/50, C12Q
    • G01N1/42Low-temperature sample treatment, e.g. cryofixation

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  • Chemical & Material Sciences (AREA)
  • Analytical Chemistry (AREA)
  • Physics & Mathematics (AREA)
  • Health & Medical Sciences (AREA)
  • Life Sciences & Earth Sciences (AREA)
  • Biochemistry (AREA)
  • General Health & Medical Sciences (AREA)
  • General Physics & Mathematics (AREA)
  • Immunology (AREA)
  • Pathology (AREA)
  • Sampling And Sample Adjustment (AREA)

Abstract

A handling device for thin sections, in particular cryosections, which serves as a multifunctional device for transferring, pressing and holding the thin sections. The device possesses a holder for at least one carrier grid, this holder comprising a baseplate and a positively-guided cover plate which can be moved onto the baseplate. In addition, means are provided for the purpose of clamping the cover plate against the baseplate and hence against a thin section which is present on the carrier grid. A separate holder-plate is preferably detachably located in the baseplate, the carrier grid being permanently attached to this holder-plate, which is matched, in shape and dimensions, to the specimen holder of the electron microscope. <IMAGE>

Description

SPECIFICATION Device for handling thin sections, in particular cryosections, and process for freeze-drying thin sections The invention reiates to a device for handling thin sections, in particular cryosections. The invention is further concerned with a process for freeze-drying sections of this nature.
In order to examine, in the electron microscope, organic preparations in the form of thin sections (cryosections) which are kept at low temperatures and are obtained by means of ultramicrotomes, it is necessary to subject the cryosections to a preliminary treatment which is designed to render them suitable for examination. This preliminary treatment calls for a pressing operation, followed by a freeze-drying operation and cautious warming to room temperature. For this purpose, the cryosections must firstly be transferred from the cold chamber of the ultramicrotome into a pressing appliance, from which they are then brought, in turn, into a freeze-drying chamber.
After the freeze-drying operation and warming to room temperature, they are then picked up and secured in the electron microscope by means of a holder. Small carrier grids are used for transporting the cryosections, these grids being made of carbon or beryllium. The cryosections, removed directly from the knife of the ultramicrotome, for example by means of a hair, are transferred onto these carrier grids, which must, due to their small size, be handled by means of tweezer-like tools. The operation of pressing the cryosections against the carrier grids is carried out with the aid of weights, which possess polished surfaces.
When employing this known procedure, it is impossible, during the various operations, to prevent cryosections from being lost, becoming unusable or, at least, being adversely affected to such an extent as to be of only limited suitability for examination by electron microscopy. First of all, during the operation of removing the carrier grid, and the cryosection present thereon, from the cold chamber of the microtome, there is a danger of the cryosection falling from the carrier grid as a result of the draught of air accompanying this operation. Furthermore, due to its very low mass, the carrier grid heats up very rapidly in the course of its short journey to the pressing tool, as a result of which the cryosection is also warmed prematurely, and is thereby adversely affected.
During the operation of mounting the carrier grids in the pressing appliance and, also, later, in the receiving fixture of an electron microscope following freeze-drying and warming -- there is always the danger that contaminants will reach the preparation as a result of handling. Moreover, the pressing tools must be kept most scrupulously clean, in order to prevent the cryosections from being contaminated and, as a result, becoming unusable. Finally, during the course of the drying operation, it is almost impossible to prevent the cryosections from losing their initially flattened shape and becoming domed.
These disadvantages lead to the situation in which, despite the existence of very good, easilyoperated ultramicrotomes, the preparation of cryosections for examination by electron microscopy has not yet become a routine operation, but is a matter for highly-specialised personnel, and even such specialists are not spared a comparatively high spoilage rate.
An object of the present invention is accordingly to provide a device by means of which the preparation of cryosections for electronmicroscopic examination can be carried out in a manner such that there is no need for the exercise of exceptional care.
A further object is to reduce the spoilage rate quite considerably, or to avoid spoilage altogether.
According to the present invention there is provided a device for handling thin sections, having a carrier grid for receiving a thin section, and a holder for the carrier grid, said holder comprising a baseplate, a guided cover plate which can be moved onto said baseplate, and means for clamping the cover plate against the baseplate and hence against a thin section which is present on the carrier grid.
The device can be installed in the cold chamber of the ultramicrotome in which a cryosection is produced, in a manner such that the cryosection, which is adhering to the knife of the ultramicrotome, can be transferred directly onto the carrier grid. The cover plate is thereupon guided against the baseplate, and clamped, so that the cryosection which is present on the carrier grid is pressed firmly onto it. The device, in its closed form, can now be removed from the cold chamber, there being no possibility of the loss of the cryosection.
As a result of the clamping of the cover plate and baseplate, the cryosection will, moreover, already have been pressed flat, so that it is unnecessary to transfer it to a separate pressing appliance. Rather, the thin section can immediately be placed in the freeze-drying chamber. For this reason, and because the holder, compared to the carrier grid, possesses a considerably higher heat capacity, absolutely no undesired warming of the thin section occurs, since the carrier grid is substantially protected from the effect of the ambient temperature.
An important and independent feature of the invention is that, in the holder according to the invention, the operation of freeze-drying the cryosection is carried out with the latter in its pressed state. Since it is comparatively easy to store the holder complete, in the freeze-drying chamber, in a manner such that heat transfer proceeds only very slowly, it is possible to control the increase in the temperature of the cryosection in such a way that absolutely no adverse effect results. Moreover, for this reason, the cryosection retains its flattened shape, even after the cover plate has been lifted off, so that the examination ir the electron microscope is not impeded.
According to a specially advantageous embodiment of the invention, the carrier grid, or carrier grids, is or are permanently attached to a holder-plate which is detachably located in a recess in the baseplate. This holder-plate is preferably matched, in its dimensions and its shape, to the receiving fixture for the specimen holder of an electron microscope, in a manner such that it can be inserted directly into this fixture. It is accordingly unnecessary, following freeze-drying and re-warming, to handle the small carrier grid with the cryosection present thereon.
Such handling has, in the past, given rise to difficulties and, frequently, to contamination. In accordance with the invention it is now possible to mount the comparatively large holder-plate directly in the receiving fixture of the electron microscope, without any manipulation of the carrier grid or of the cryosection which is present on it.
In the course of the known procedure, instances have commonly occurred in which the cryosections have been lost because they have not remained on the carrier grid during the operation of pressing them flat, but have adhered to the pressing tool and have either fallen from this tool, or have been damaged while being detached from it. According to a further embodiment of the invention, it is also possible to eliminate this source of loss. This is achieved by an arrangement whereby an identical holder-plate, with a carrier grid permanently attached to it, is located in the cover plate of the holder, in a manner such that, when the holder is in the clamped state, the thin section is held between the two carrier grids.The device accordingly presses the thin section flat, between the two grids, and it is immaterial on which of the two carrier grids it remains, for on account of the identical configuration of the two holder-plates, it is possible to insert into the electron microscope that plate which carries the carrier grid to which the thin section is adhering.
In accordance with a special embodiment, the carrier grid is fastened, for example by an adhesive, above an opening which extends through the holder-plate, and a pressure element is located in the recess in the baseplate. The holder-plate can be fitted in the recess, and the pressure element projects into the opening and is in contact with the under-surface of the carrier grid. This configuration promotes the freezedrying, since the thin section is in communication with the environment, through the carrier grid. If, moreover, the height of the pressure element is adjustable, as is provided in accordance with a further embodiment, it is possible to set a defined optimum pressure for the operation of pressing the thin section flat.
The invention also provides a method for freeze-drying thin sections, which comprises producing a thin section by a microtome, conveying said section onto a carrier grid, pressing said section flat, transferring said section, together with said carrier grid, into a freeze-drying chamber, and freeze-drying said section in said chamber.
Further advantages and features of the present invention are evident from the description, in the text which follows, of preferred illustrative embodiments, which refers to the drawings. In the drawings: Figure 1 shows a first embodiment of a handling device according to the invention, in the opened state, ready to receive a cryosection; Figure 2 shows a holder-plate, represented on its own; Figure 3 shows the handling device according to Figure 1, in the state in which it is acting as a pressing device; Figure 4 shows a holder-plate, represented on its own, which is mounted in the electron microscope, this Figure displaying the better accessibility of a thin section present on this holder-plate compared to the known procedure, and Figures 5 and 6 show second and third embodiments of the handling device according to the invention.
The first embodiment of the handling device according to the invention, represented in Figures 1 to 3, essentially comprises a baseplate 1 and a cover plate 2, which are coupled together, by means of a hinge 3, to form a unit resembling a pair of jaws. The two plates 1, 2 are essentially symmetrical with respect to their upper surfaces, which face each other, have an elongated rectangular shape (directed perpendicularly to the plane of the drawing), and have, on their two opposite end faces, clamping screws 4 which enable them to be clamped together.
Each of the two plates 1, 2 possesses a rectangular recess 5 and 6 respectively, in which a holder-plate 7 is secured in a manner permitting easy detachment. Screws can be employed for securing the holder-plates 7, or they can be secured by snapping them in, behind springs (not shown) which project from the sidewalls of the recesses 5, 6.
In its centre, each of the holder-plates 7 has at least one opening 8 which extends through the holder-plate and widens towards the bottom of the associated recess 5, 6. Each opening 8 is covered, at its upper end, by a carrier grid 9, made of carbon or beryllium. The carrier grid 9 is glued to the upper surface of the holder-plate. The thickness of the holder-plate 7 is chosen, in relation to the associated recesses 5, 6 such that the carrier grids 9 come into precise contact with each other when the device is in the closed state (compare Figure 3), and bear against each other under a pressure which depends on the pressure level which is preset. Spectroscopically pure graphite is preferably used as the material for the holder-plate 7.
The device shown in Figures 1 to 3 is manipulated as follows: Following the operation in which a cryosection is sliced, in an ultramicrotome, from a solid preparation-block, the cryosection is transferred from the knife of the ultramicrotome, onto the device according to the invention, which is placed immediately beside the ultramicrotome. Stated more precisely, the cryosection is transferred onto the carrier grid 9 of the baseplate 1, this transfer operation being carried out, for example, by means of a hair or some other known tool. In Figure 2, the cryosection is marked 1 0. Thereafter, the cover plate 2 is swung downwards, about the hinge 3, so that the upper carrier grid 9 is pressed against the cryosection 10, which is clamped between the two carrier grids 9.By tightening the screws 4, which are supported on the plates 1, 2, if appropriate by means of springs, which are not shown, it is possible to generate a clamping force which exerts a defined pressure on the cryosection 10 between the carrier grids 9. It is possible to tighten these screws 4 while the device is still inside the cold chamber of the ultramicrotome, or, alternatively, after it has been removed from this chamber. It is now possible to introduce the device, together with the cryosection, into a freeze-drying chamber, without an undesired increase in temperature. The cryosection, in the pressed state inside the device, is freeze-dried in the freeze-drying chamber and is warmed to room temperature in accordance with a defined temperature/time curve, the details of which, being well-known in the art, are not given here.
Following the freeze-drying operation, the device is reopened by lifting the cover plate 2 from the baseplate 1, and that holder-plate 7 which has the cryosection 10 on its carrier grid 9 is removed from the device. Since, as hereinbefore described, the holder-plate 7 is matched, in shape and dimensions, to the specimen holders of an electron microscope, in a manner which enables it to be secured directly inside these holders, there is no need to remove the cryosection 10 from the carrier grids 9. Rather, the holder-piate 7 is itself transferred directly into the specimen holder of the electron microscope.
Following this procedure, the cryosection 10 proves, in virtually all cases, to be flat, due to the fact that the free-drying operation was carried out with the cryosection in the pressed state. The possibility of disadvantageous effects resulting from the deformation of the background, or from obstruction of the X-ray radiation by portions of the preparation which have domed up, is thus avoided.
The handling procedure described above indicates that the device according to the invention serves as a multifunctional device which transfers, presses and holds the cryosection. On the one hand, the device possesses dimensions which enable it to be secured inside the cold chamber of the ultramicrotome, near its knife, in order to receive the cryosection from this knife. On the other hand, its dimensions are such that it can be manipulated directly, by hand and without special care.
In the illustrative embodiment represented, the holder-plates 7 are inserted into the associated recesses 5, 6 in the plate 1, 2 in a manner such that a pressure element 11 or 1 2 projects from the bottom of the associated recess into the conical opening 8. The height of this pressure element 11, 12 is chosen to be such that its upper end face comes to bear directly against the undersurface of the carrier grid 9. During the pressing operation, each of the two carrier grids 9 is consequently supported against the associated pressure element, so that a defined pressure is exerted on the cryosection 10 which is present between them. In the illustrative embodiment shown, the pressure elements 11, 1 2 are securely pressed into the associated plates 1, 2.However, in place of these elements 11, 12, setscrews could be used. The setscrews could be operated from the outside, thus enabling the contact pressure to be adjusted.
Figure 4 shows the arrangement of a holderplate 7 in the electron microscope. In the course of an X-ray analysis in the electron microscope, shadowing occurs as a result of the lateral arrangement of the X-ray detector and the special device 1 3 for holding the carrier grid, this device, necessary up to now, being represented -- as the state of the art - only by dash-dot lines. Due to this shadowing, it has been necessary, up to now, to tilt the device for holding the cryosection through an angle corresponding to the broken line 14. In contrast, the device 13 for holding the carrier grid is rendered unnecessary by the procedure according to the invention.From this, the angle of tilt which is required in order to obtain a suitable signal proves to be considerably smaller, and corresponds to the broken line 1 5.
Figures 5 and 6 show modified embodiments of the device according to the invention, in which the hinge 3 between the plates 1, 2 is replaced by making the cover plate 2' a sliding fit on the external surface of the baseplate 1' (Figure 5), or, alternatively, by means of a pin/hole fit, in which locating pins 1 6 move into locating holes 1 7 during the closing movement. The positive guidance of the plates towards each other eliminates any excessive relative movement parallel to the carrier grid 9 during the pressing operation, such movement being capable of damaging the cryosection 10 which is present on the carrier grid.
The device according to the invention consequently possesses the advantages not only that the preparation of cryosections for electronmicroscopic examination can be carried out simply and without excessive care being required, but also that the number of cryosections which can be used for the examination is considerably increased, that there is no danger of the delicate carrier grids being damaged or contaminated, and that the re-warming of the cryosections to room temperature can take place in a controlled manner, during the freeze-drying operation, from the original temperature of, for example, 120C C.
This is effected by, for example, mounting the baseplate 1 on sharp points, which substantially minimise the thermal contact with respect to the support and thereby prevent disturbing changes from occurring in the cryosections as a result of excessively rapid warming.
Instead of the clamping means which are installed directly on the plates 1, 2 themselves, and which generate the contact pressure for the cryosection 10, it is also possible to insert the plates 1, 2, especially those according to Figures 5 and 6, into a separate clamping appliance, and to press them together.

Claims (1)

1. A device for handling thin sections, having a carrier grid for receiving a thin section, and a holder for the carrier grid, said holder comprising a baseplate, a guided cover plate which can be moved onto said baseplate, and means for clamping the cover plate against the baseplate and hence against a thin section which is present on the carrier grid.
2. A device according to Claim 1, wherein said holder further comprises a holder-plate detachably located in a recess in said baseplate, said carrier grid being permanently attached to said holderplate.
3. A device according to Claim 1 or 2, wherein said holder further comprises a first holder-plate detachably located in a recess in said baseplate, said carrier grid being permanently attached to said first holder-plate, and a second holder-plate, a second carrier grid being permanently attached to said second holder-plate, said second holder-plate being located in said cover plate in a manner such that, when said holder is in the clamped state, the thin section is held between said carrier grid and said second carrier grid.
4. A device according to Claim 2, wherein said carrier grid is fastened above an opening which extends through said holder-plate, and a pressure element is located in the recess in said baseplate, said pressure element projecting into said opening and standing in contact with the undersurface of the carrier grid.
5. A device according to Claim 4, wherein said pressure element comprises adjustment means whereby the height of said pressure element relative to said baseplate is adjustable.
6. A device according to any of Claims 2 to 5, wherein said holder-plate is dimensioned and arranged to be received in the receiving fixture of an electron microscope.
7. A device according to any of Claims 2 to 6, wherein said holder-plate is composed of highpurity graphite.
8. A device according to any of Claims 1 to 7, further comprising hinge means coupling together said baseplate and said cover plate.
9. A device according to any of Claims 1 to 8, further comprising guide means for slidably guiding said baseplate positively relative to said cover plate.
1 0. A method for freeze-drying thin sections, which comprises producing a thin section by a microtome, conveying said section onto a carrier grid, pressing said section flat, transferring said section, together with said carrier grid, into a freeze-drying chamber, and freeze-drying said section in said chamber.
1 A method according to Claim 10, which further comprises warming said freeze-dried section.
1 2. A device for handling thin sections substantially as herein described with reference to the accompanying drawings.
13. A method according to Claim 10 substantially as herein described.
GB08314246A 1982-06-01 1983-05-23 Device for handling thin sections in particular cryosections and process for freeze-drying thin sections Expired GB2121208B (en)

Applications Claiming Priority (1)

Application Number Priority Date Filing Date Title
DE19823220619 DE3220619C2 (en) 1982-06-01 1982-06-01 Device for handling thin sections, in particular cryosections, and method for freeze-drying such thin sections

Publications (3)

Publication Number Publication Date
GB8314246D0 GB8314246D0 (en) 1983-06-29
GB2121208A true GB2121208A (en) 1983-12-14
GB2121208B GB2121208B (en) 1985-10-02

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GB08314246A Expired GB2121208B (en) 1982-06-01 1983-05-23 Device for handling thin sections in particular cryosections and process for freeze-drying thin sections

Country Status (5)

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JP (1) JPS58215533A (en)
DE (1) DE3220619C2 (en)
FR (1) FR2527771A1 (en)
GB (1) GB2121208B (en)
SE (1) SE8303040L (en)

Cited By (2)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
EP1503399A1 (en) * 2003-08-01 2005-02-02 Roper Industries Limited Specimen tip and tip holder assembly
CN1294884C (en) * 2005-03-14 2007-01-17 张疆 Sample applying clamp and its operating method

Families Citing this family (4)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
DE3409011A1 (en) * 1984-03-12 1985-09-12 Kraftwerk Union AG, 4330 Mülheim Metallographic examination method and clamping frame for carrying it out
DE4306310C2 (en) * 1993-03-01 1996-08-29 Karel Chaloupek Tissue embedding container with insert
AUPN114095A0 (en) * 1995-02-14 1995-03-09 Beecroft, Jennifer Leslie A press for drying parts of plants using microwave energy
DE102023101970A1 (en) 2023-01-26 2024-08-01 Jena Biotech Invest GmbH Coolable carrier and device and method for producing frozen sample spheres

Family Cites Families (1)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
US3176472A (en) * 1963-05-08 1965-04-06 Whirlpool Co Microtome freezing system

Cited By (2)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
EP1503399A1 (en) * 2003-08-01 2005-02-02 Roper Industries Limited Specimen tip and tip holder assembly
CN1294884C (en) * 2005-03-14 2007-01-17 张疆 Sample applying clamp and its operating method

Also Published As

Publication number Publication date
GB2121208B (en) 1985-10-02
DE3220619C2 (en) 1985-09-19
SE8303040D0 (en) 1983-05-30
FR2527771A1 (en) 1983-12-02
DE3220619A1 (en) 1983-12-01
JPS58215533A (en) 1983-12-15
GB8314246D0 (en) 1983-06-29
SE8303040L (en) 1983-12-02

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PCNP Patent ceased through non-payment of renewal fee
711A Proceeding under section 117(1) patents act 1977