Cell preservation solution

JP2024531589A5Pending Publication Date: 2025-09-12ANASITE LAB GMBH
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Patent Information

Application Number
JP2024514631
Authority / Receiving Office
JP · JP
Patent Type
Applications
Current Assignee / Owner
Priority Date
2021-09-06
Filing Date
2022-09-05
Publication Date
2025-09-12

AI Technical Summary

Technical Problem

Existing methods for preserving cells, particularly circulating tumor cells, fail to stabilize the transcriptome and maintain cellular morphology for molecular analysis, leading to uncontrolled degradation and changes in gene expression due to environmental factors and storage conditions.

Method used

A solution containing a membrane-permeable proton carrier, free of chaotropic substances and alcohols, with a pH below 6, which rapidly arrests metabolic processes by lowering intracellular pH to stabilize the transcriptome and preserve cell morphology.

Benefits of technology

The solution effectively stabilizes the transcriptome and maintains cellular morphology, allowing for time-delayed molecular and morphological analysis of cells by preventing enzymatic activity and uncontrolled degradation.

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Abstract

The present invention relates to a solution for preservation or storage of cells in blood samples or other body fluids, in cell cultures or tissue samples. The solution contains a cell membrane-permeable proton carrier and is substantially free of chaotropic substances, alcohol and detergents. Furthermore, the solution according to the invention has a pH value that produces an intracellular pH of cells of less than 6. Such a solution is advantageously used in sample tubes, blood collection syringes or blood collection tubes.
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Description

[Technical field]

[0001] The present invention generally relates to the stabilization of blood samples, in particular the preservation of cells, most notably circulating tumor cells, in blood samples or other body fluids. The present invention particularly relates to a preservation solution and use for the rapid and permanent interruption of the metabolism of cells to stabilize the gene expression state, in particular the transcriptome, while preserving the morphology, which allows for subsequent molecular analysis of the transcriptome. Furthermore, the present invention relates to the use of the preservation solution and to a sample tube or blood collection tube or blood collection syringe in which the solution according to the present invention is provided. [Background technology]

[0002] 2. Background of the Invention Biomolecules are subject to constant turnover in intact metabolizing cells. Depending on, for example, environmental conditions or the stage of differentiation or other circumstances that have an effect on metabolism, this turnover of molecules takes place through new synthesis and degradation. Changes in biomolecular composition occur in a specific, controlled and targeted manner within the cell. Outside the cell, on the other hand, biomolecules are subject to non-specific, uncontrolled and random degradation. To understand the biological function of a molecule in a cell, it is crucial to understand its function in the context of other biomolecules present at the same time. Single-cell transcriptome analysis (RNASeq) in particular has recently revealed that cells of the same type can show very different gene expression patterns. In particular, the analysis of tumor cells has shown that solid tumors can be heterogeneous in their gene expression. It is therefore of general interest to analyze the transcriptome of individual cells.

[0003] Analyzing the gene expression state of cells is complicated by various factors. These include the instability of many biomolecules, especially RNA, when they are present outside the cell. However, the storage of intact cells until their analysis can also have a considerable effect on gene expression. For example, it is common practice to temporarily store cells obtained from cell cultures at 4°C during harvesting, removing the medium and growth factors, and repeatedly centrifugating for preparation, which not only induces considerable temperature changes but also results in fluctuating cell density. It is known that cell density has a considerable effect on differentiation and cell division. The same is true after removal of tissues or tumors. Preparation changes the supply of nutrients, the partial pressure of oxygen and CO2, and the microenvironment. This is accompanied by a rapid response from the cells in the form of an altered expression pattern, which is most noticeable at the transcriptome level in the shortest time. It is therefore important to preserve the transcriptome as much as possible at the respective time point and protect it from manipulation-related changes.

[0004] The difficulties of transcriptome analysis are made clear by the example of biobanks. For example, human tumor samples given for biobanking after surgery are usually fixed with 10% formaldehyde immediately after removal. However, this has the considerable disadvantage that the transcriptome is cross-linked, which is important for analyzing the actual condition. This makes the molecular analysis much more difficult and it is generally no longer possible to isolate the intact molecules. For this reason, fresh samples are usually stored at room temperature until they can be further processed by competent staff. Further processing is usually performed by professionally dividing the samples in order to freeze one part for subsequent molecular analysis and keep another part ready for morphological analysis after formaldehyde fixation. The storage period between collection and further processing can be several hours under certain circumstances and holds a considerable risk for the validity of the biobank or stored samples. Moreover, subsequent thawing of the sample for molecular analysis leads to the induction of RNA degradation processes and thus to changes in the transcriptome.

[0005] In tumor biology, a large heterogeneity of the molecular composition of cells within a tumor has been demonstrated in recent years. In this context, circulating tumor cells (CTCs) are particularly important, since the analysis of these cells allows to identify therapeutic options and to monitor the course of the disease and therapy. Circulating tumor cells are cells that have shed from the primary tumor. They can either be present in the lymphatic system or circulate in the bloodstream. There is a possibility that, at least for some types of circulating tumor cells, they will colonize other organs or tissues and form new tumors or metastases. The majority of cancer-related deaths are not due to the primary tumor, but to metastases and secondary tumors derived from them.

[0006] Diagnostic methods that allow the analysis of CTCs can significantly contribute to the selection of personalized and effective treatments. Moreover, analyzing CTCs can help to establish prognosis for patients at an early stage, since it has been recognized that these circulating cells can already be present and detected at an early stage of the disease. Analysis of CTCs is also very important for testing the efficacy of pharmaceutical drugs.

[0007] However, CTCs are only present in very small amounts in the respective body fluids and are sensitive to manipulations during analysis. As mentioned above, all biomolecules in intact metabolizing cells are also subject to a constant turnover. Depending on various influencing factors, such as environmental conditions or the stage of differentiation or other circumstances affecting metabolism, this turnover of molecules takes place through new synthesis and degradation. Changes in biomolecular composition occur in a specific, controlled and targeted manner within the cell. To understand the biological function of molecules in cells, it is crucial to observe their respective function in the context of other biomolecules present at the same time. This requires the preservation of cells and the stabilization of their metabolic and morphological states.

[0008] Although the existence of CTCs has been known for a long time, it is only in the past few years that they have come to the forefront of research to improve treatment options for tumor patients. Several methods of preserving blood have been the standard worldwide for decades. EDTA, citrate or heparin additives prevent blood clotting and allow blood components to be analyzed. However, CTCs cannot be stabilized so well even with the help of these additives, since many normal blood functions remain intact even after blood collection, i.e. ex vivo. For example, the immune system reacts and tries to eliminate CTCs, or CTCs already attacked by chemotherapy undergo necrosis or apoptosis.

[0009] The storage time between the collection of the blood sample and its further processing can also be many hours and poses significant additional risks. The expression state of CTCs changes with temperature and environmental conditions, to which CTCs respond by altering their gene expression. This leads to undesirable changes in the molecular image upon subsequent analysis.

[0010] It is also known that even normal blood cells are subject to considerable changes due to storage. On the other hand, blood storage is part of the diagnostic routine, since certain procedures and times are prescribed in daily hospital life. Storage-related changes include not only changes in the expression state of blood cells, but also a kind of disintegration of cells, which induces so-called debris, i.e. cluttered aggregates of cellular material, which not only makes the analysis of cells more difficult, but may also result in invalid analysis (see also U.S. Pat. No. 7,863,012 B2). This shows that not only the preservation of cell integrity, but also the preservation of the expression state of cells over a long period of time is crucial for the analysis of CTCs. RNA stability is particularly important, since the transcriptome can provide crucial insights into tumor biology and therapeutic options.

[0011] "Molecular analysis of the transcriptome" refers to the analysis of cellular RNA using molecular biology techniques. These include, for example, spectroscopic quantification, Northern hybridization, amplification of individual transcripts by reverse transcription or also polymerase chain reaction with or without hybridization of biochips, and RNA-seq (total RNA, mRNA, amplicon sequencing). Such molecular biology analysis methods are generally known and are not the subject of the present invention. "Morphological analysis" as used herein refers to the analysis of single or multiple cells in their natural situation or natural environment to the analysis of cell clusters, referring to size, shape, granularity, etc. The term "morphometric analysis" as used herein refers to the analysis of one or more cellular characteristics of individual or several cells, for example the analysis of the expression of certain cell markers.

[0012] prior art Various methods of maintaining cell integrity have been proposed in the literature. As a rule, they are based on crosslinking agents such as formaldehyde, paraformaldehyde and glutaraldehyde (e.g. EP 0214613A2, DE 4039716A1). US Patent 4,971,783A describes a process of preparing tissues. US Patent 5,976,829A describes a formaldehyde-based fixative that is also suitable for DNA / RNA analysis.

[0013] Another approach is mentioned in the cited literature, according to which methylol derivatives allow the fixation of blood components. Methylol is also used as a preservative in the cosmetics industry. The exact mechanism of action is unclear, but formaldehyde appears to play an important role. However, the cross-linking nature of these fixative solutions, especially of nucleic acids, makes it difficult to analyze cells at the molecular level. US Patent No. 5,976,829 A among others tries to solve this problem with a fixative that contains an aldehyde, an alcohol, a chelating agent and a buffer that does not contain amino groups.

[0014] In the scientific field, other methods are also used for the fixation of cells or molecules. These include, for example, freezing at low temperatures, using alcohol-based fixatives (e.g. methanol, ethanol, glycols) or chaotropic agents (e.g. isothiocyanates) that allow the stabilization of molecules while destroying the morphological context.

[0015] Various solutions are also available in the prior art for fixing tissues without cross-linking while at the same time preserving their structure. EP 2126542 B1, FR 2852392 A1, WO 2013 / 131816 A1 and WO 03 / 029783 A1 describe mixtures for tissue fixation using organic solvents. Solutions are also available for stabilizing biomolecules without preserving the morphological context. Non-cross-linking methods for the preservation of cells and tissues are usually based on dehydration by incubation in organic solutions such as alcohol or acetone, preferably with a strong acid, for example a combination of methanol / glacial acetic acid. Nucleic acids are relatively well protected. Acetone / glacial acetic acid fixes somewhat more gently in comparison. However, it is not possible to analyze the molecules at the cellular level after fixation with alcohol or acetone without rehydration. Nucleic acids, particularly RNA, are subject to unhindered degradation due to damage to the cell membrane system (eg, lysosomes) upon decompartmentalization, i.e., rehydration.

[0016] Other publications describe additional solutions for fixing cells using various mechanisms, for example, the corresponding solutions disclosed in WO 2012 / 150479 A1 contain halogen cyanoacetamides, and US 2015 / 0050689 A1 describes combinations of polyamines and acids that react to release aldehydes, particularly formaldehyde.

[0017] In practice, biological preparations are usually flash frozen to obtain RNA. To obtain RNA, the samples are then lysed under strongly denaturing or chaotropic conditions in the frozen state. Although the RNA isolated in this way is often of satisfactory quality, it is not possible to qualify the desired cell(s) for examination by morphological or morphometric analysis, although molecular analysis of subpopulations is in fact particularly desirable. However, morphological or morphometric selection of such subsets prior to freezing requires cross-linking formaldehyde fixation to maintain the expression state, which makes molecular analysis difficult or impossible. Non-cross-linking, dehydration fixation alternatives for isolating cell subsets are also not preferred, since subsequent selection of subpopulations in the rehydrated state leads to rapid degradation of RNA.

[0018] China Patent Application Publication No. 202011616524 teaches the stabilization of DNA in whole blood using a complex mixture of anticoagulants and stabilizers at neutral or near-neutral pH.

[0019] Another prior art proposal for non-crosslinking fixation of cells and tissues is Hepes-mediated glutamate protection (DE 10021390C2). Here, an amino acid-containing solution is proposed to morphologically preserve tissues by dehydrating paraffin embedding as long-term storage. Dehydration fixation is relatively gentle by using acetone, but there are structural changes in the tissue due to the lack of crosslinking. Processing is performed at low temperatures, but the system is relatively ineffective in stabilizing the transcriptome.

[0020] Ringwald et al. (Transfusion Medicine Reviews, 20(2), 2006) stabilize platelets with a mixture of various salts and acids. In particular, acetic acid is used to maintain platelet metabolism at a neutral pH during storage for transfusion purposes. As "cells" without nuclei, platelets are transcriptionally inactive.

[0021] In a recently published RNAseq transcriptome analysis method, cells are fixed with a mixture of water, methanol, acetic acid and glycerol (ACME). This method alters the structure and morphology of cells, and it cannot be excluded that the alcoholic reagent used will release RNA molecules and protein markers from the cells. Furthermore, rehydration leads to the degradation of RNA transcripts. The teaching of International Application PCT / EP2015 / 061678 (WO 2015 / 181220A1) follows a similar approach.

[0022] A variety of chaotropic agents are commercially available for stabilizing RNA while disrupting morphological associations (eg, RNAlater, Ambion; ProtectAll, Qiagen).

[0023] A variant without organic solvents but using bisulfite is described in US Patent No. 5,432,056A, where a bisulfite-containing acidic system for fixing tissue sections or other thin-layer samples is proposed. US Patent No. 6,337,189B1 in turn describes urea compounds in combination with alcohols for the non-crosslinking fixation of cytological preparations. However, the morphological preservation of cellular structures is limited in all these methods.

[0024] Such methods are unsuitable for the preservation of whole blood for the analysis of CTCs because they either destroy cellular integrity or do not ensure effective molecular stabilization, making them unsuitable for routine diagnostics.

[0025] However, US Patent No. 10,091,984 B2 teaches that urea compounds that release formaldehyde can morphologically stabilize CTCs when the formaldehyde is simultaneously scavenged by glycine. Even though this disclosure does not presuppose covalent modification of CTC molecules, the role of formaldehyde is unclear.

[0026] The prior art has limitations with respect to possible solutions for preserving intact cell transcriptomes in their current state for molecular analysis at a later time point. In particular, the prior art has limitations when it comes to carrying out molecular analysis of the transcriptome of a particular cell: (A) cross-linking agents preserve the expression state relatively slowly, depending on the diffusion rate of the agent, complicating molecular analysis; (B) non-cross-linking fixation with organic solutions requires rehydration, forcing changes in the transcriptome through uncontrolled molecular degradation; (C) lysis of cell aggregates with chaotropic agents does not allow differentiation of individual cells. In theory, chaotropic lysis of individual cells is possible. However, isolation would be preceded by the destruction of their context, which would lead to changes in the transcriptome.

[0027] The problem to be solved was therefore to develop a solution that would allow interrupting the metabolism in cells of culture or tissue at a time determined by the experimenter, in particular stabilizing the transcriptome at this time and at the same time leaving the cells and cellular compartments intact to prevent uncontrolled degradation of RNA, with the intention of allowing a time-delayed transcriptome analysis for preservation or for carrying out morphological or morphometric analyses to qualify the cells.

[0028] The problem to be solved also consisted of developing methods and suitable means that allow interrupting the metabolic or biomolecular turnover in blood cells, in particular CTCs or other body fluids, while at the same time keeping the cells morphologically intact and preventing blood clotting, in order to ensure a temporary, highly stabilized, non-crosslinked preservation of the actual state of the genome, transcriptome and proteome, as well as to prevent uncontrolled degradation of molecules. The solution to the problem should allow a time-delayed processing for the isolation of CTCs and the performance of molecular and possibly morphological analyses of CTCs or other cells. Summary of the Invention

[0029] The above-mentioned problems are solved by the present invention. A first aspect of the present invention comprises: a) containing a membrane-permeable proton carrier; b) being substantially free of chaotropic substances, alcohol and detergents; and c) having a pH value that produces an intracellular pH of the cell or cells of less than 6. The present invention relates to a solution for preserving cells, in particular at least one eukaryotic cell and in particular tumor cells and circulating tumor cells in a blood sample or another body fluid, cells from a cell culture or cells in a tissue, characterized in that

[0030] Furthermore, another aspect of the present invention is the use of such a solution according to the first aspect of the invention for preserving, preserving or / and fixing cells, in particular at least one eukaryotic cell, in particular tumour cells or circulating tumour cells in a blood sample or other body fluid or cells from cell culture or cells in a tissue, in particular for molecular analysis of the genome, transcriptome and proteome, while largely preserving the morphology of the cells.

[0031] A third aspect of the invention relates to a sample tube, blood collection syringe or blood collection tube containing a solution according to the first aspect of the invention.

[0032] Advantages and details of the invention are apparent from the claims, the following detailed description and embodiments. [Brief description of the drawings]

[0033] [Figure 1] Figure 1 shows fixed blood spiked with cultured tumor cells and examined by flow cytometry 24 hours later, as described in Example 1. The tumor cell population is clearly distinguishable. [Diagram 2]Figure 2 shows an exemplary single cell analysis. Cultured tumor cells were added to fixed blood as described in Example 1, labeled with an antibody against EpCam after 40 hours, and examined by flow cytometry in ImageStream. Cell morphology is preserved (2a). Fluorescent staining with the antibody is shown in 2b, and the overlay of morphology and fluorescence is shown in 2c. [Diagram 3] Figure 3 shows a comparison of the transcriptome integrity after application of different cell fixation methods using electrophoretic cDNA analysis after treatment of cells as described in embodiment 2. Cells treated with a solution according to the invention resemble fresh, untreated cells in their expression state. DETAILED DESCRIPTION OF THE PREFERRED EMBODIMENTS

[0034] Detailed Description of the Invention Intact cell membranes are not permeable for passive proton transport and proton transport across cell membranes is highly regulated. The invention is based on the finding that a sudden and rapid change (decrease) in the intracellular pH value leads to a loss of function of the cellular machinery for the synthesis and degradation of molecules and, through the inactivation of enzymatic activity, to a stop in metabolism without disturbing the compartmentalization of the cell. An essential property of the solution according to the invention is therefore that metabolic processes are stopped very quickly by lowering the pH value, thus avoiding environment-dependent changes in the expression state.

[0035] According to the present invention, this change in intracellular pH is achieved by a membrane-permeable proton carrier contained in the solution. A proton carrier is understood to be a molecule that can cross the cell membrane in protonated form, preferably passively, under suitable conditions and decomposes into anions and protons inside the cell. Suitable conditions are created, for example, by mixing cells with a proton carrier having a pK in the acidic range in an acidic environment. The protonated form of the proton carrier crosses the cell membrane and dissociates inside the cell due to the higher intracellular pH. As an ion, the proton carrier cannot leave the cell, so that at equilibrium, the intracellular pH is determined by the extracellular pH.

[0036] Furthermore, the present invention largely neutralizes the charge of nucleic acids, which, particularly in the case of RNA, leads to partial precipitation from the aqueous environment and thus stabilization against both enzymatic and alkaline hydrolysis.

[0037] In the context of the present invention, and especially for the preservation of cell morphology, it is further essential that there is a substantial complete absence of chaotropic substances present in many corresponding preservation solutions in the prior art.Chaotropic substances, such as perchlorates such as sodium perchlorate, thiocyanates such as guanidinium thiocyanate, but also guanidinium hydrochloride and barium salts, are substances that dissolve the ordered hydrogen bonds in water, disintegrating the structure of water and causing an increase in entropy.They disturb the hydration shells of biomolecules, which leads to their denaturation and, if present in suitable concentrations, to the complete dissolution of cells.

[0038] In the context of the present invention, the term "substantially completely free" means that a substance may only be present in the maximum amount that does not destroy the morphological integrity of the cells. In a preferred embodiment, the solution according to the invention is completely free of chaotropic substances.

[0039] Analogous to the absence of chaotropic substances, the solutions according to the invention are also characterized by the virtually complete absence of alcohols and detergents. In a preferred embodiment, these substances are also completely excluded from the solutions according to the invention.

[0040] Finally, the solution according to the invention is further characterized in that it has a pH value which produces an intracellular pH of the cell(s) of less than 6.

[0041] Advantageously, membrane-permeable carboxylic acids, in particular C2 to C5 carboxylic acids, are used as proton carriers in the context of the present invention. As already mentioned above, the present invention is characterized by a rapid cessation of metabolism while preserving the morphology of cells, in particular cells in blood. Cells in blood are understood to be all cells that contain a cell nucleus. This metabolic cessation is also referred to below as fixation or preservation, although the mechanism of action of the present invention is different from the known fixation by crosslinking, dehydration or denaturation. The metabolic cessation is preferably achieved by dissolved carboxylic acids in combination with a low pH. The protonated form of the carboxylic acid passes through the cell membrane and dissociates inside the cell. However, other acids that are membrane-permeable in protonated form can also be used.

[0042] Acids are preferably present in the solution according to the invention in the form of carboxylic acid buffer systems or acid / base systems, which form and stabilize the pH in the desired acidic range. These buffer systems preferably contain weak acids and their corresponding bases. Blood has a very high buffering capacity. According to the invention, this buffering capacity is titrated with the buffer systems contained in the solution in order to create an acidic environment in the mixture, especially in the cells, which in turn almost stops metabolic activity. According to the invention, a buffer system that provides a sufficient amount of protonated carboxylic acid for membrane crossing and at the same time releases sufficient H+ ions in the cells is suitable.

[0043] Depending on the test substance used, it may be necessary to further add strong acid to the solution according to the present invention to adjust the intracellular pH value so as to eliminate the buffering capacity of the test substance.In particular, hydrochloric acid or other mineral acids are suitable strong acids.However, these acids are not membrane-permeable and therefore do not represent proton carriers in the context of the present invention.

[0044] In particular, the proton carrier is selected and the pH of the solution according to the invention is adjusted so that after mixing with cells, blood samples or other body fluids or tissue samples, a mixture having a pH between 4 and 6 is obtained. Those skilled in the art are familiar with the pH value and buffer capacity of cell culture media, blood samples or other body fluids or tissue samples that may be of interest, and can easily make appropriate adjustments and therefore pre-set the pH value of the solution according to the desired mixing ratio. The usual mixing ratio of the blood sample to be analyzed and the preservation solution is also known to those skilled in the art, for example 1:10 for citrated blood. The mixing ratio can be appropriately adapted for other objects of interest and is generally in the same range.

[0045] In the context of the present invention, acetic acid is in particular used as carboxylic acid. Acetic acid is then preferably present in the solution according to the invention as an acetic acid / acetate system, the pH of which is adjusted in any case to be less than 6. In a further preferred embodiment, the pH value and the buffering capacity of the solution according to the invention are selected such that the resulting pH value after mixing with the sample is less than 6. In particular, however, the pH value of the mixture is even between 2 and 6, more preferably between 4.8 and 5.8 and particularly preferably between 5.0 and 5.5 or between 5.1 and 5.3. Solutions according to the invention whose pH value is less than 6, preferably less than 5.8 and in particular 5.3 or less, are particularly suitable for this purpose. Depending on the intended mixing ratio and the body fluid to be preserved, such solutions according to the present invention have pH values ​​in the acidic range, in particular between 1 and 5 and preferably between 1.8 and 4.5, and preferably between 2 and 3, for example, if intended to be mixed with blood in a ratio of 1:5. The information on the pH value relates in the context of the present invention to a temperature of 20°C. As already explained above, the intracellular pH value is also set based on the pH of the solution in which the cells reside and the buffering capacity of the test substance.

[0046] The acid / base system of the proton carrier of the invention is usually present in a concentration of 1 to 300 mM, depending on whether it is a concentrated solution that is subjected to dilution with blood samples and other aqueous solutions, or whether it is a ready-to-use solution that is added in excess, for example in a 10-fold amount, to isolated cells. The solution according to the invention is characterized by the possibility of being configured as (multiple) concentrates in order to fix blood without excessive dilution. In particular, solutions according to the invention are envisaged in which the acid / base system of the proton carrier and its anticoagulant component are configured as 2 to 20-fold, preferably 5 to 10-fold, concentrates for storage of blood or another body fluid in order to achieve the desired intracellular pH as described above.

[0047] In a preferred embodiment of the invention, the acid / base system and preferably the acetic acid / acetate system are present in the concentrated solution according to the invention in a concentration which is between 10 mM and 300 mM, preferably between 25 mM and 200 mM and particularly preferably between 50 mM and 150 mM. On the other hand, particularly for ready-to-use solutions, it is preferred that the solution contains the acid / base system in a concentration of between 1 mM and 100 mM, preferably between 5 mM and 50 mM and particularly preferably between 10 mM and 20 mM.

[0048] In addition to the aforementioned or other proton carriers, the solution according to the invention may also contain additional substances, in particular buffer substances or conventional auxiliary substances. In particular, the solution according to the invention may contain imidazole and / or dimethylsulfoxide (DMSO). Imidazole has a slightly acidic pK and may cross the cell membrane in the protonated or unprotonated form. Imidazole is initially H + It can assist the transport of ions into the cell interior. A suitable concentration of imidazole is, for example, 50 mM. To use the solution according to the invention for cryopreservation of test objects, it preferably contains DMSO at a final concentration of 5 to 15%, particularly preferably 10%.

[0049] Other suitable proton carriers that can be used as components of the preservation solution in the context of the present invention are cyclic peptides such as valinomycin or nigericin. Furthermore, the solutions according to the invention can also contain further ions, in particular Cl - It may contain ions.

[0050] The solution according to the present invention may also contain other substances that contribute to preservation. For example, the addition of β-mercaptoethanol or dithiothreitol or similar reagents may further reduce the activity of RNase. It is also clear to those skilled in the art that the addition of other enzyme inhibitors, such as phosphatase inhibitors, may also have a positive effect on the preservation effect of the solution according to the present invention.

[0051] In a further preferred embodiment, the solution according to the invention further comprises at least one amino acid. In particular, this is an amino acid that occurs naturally in tissues or in cells. The buffer system of the invention utilizes the protective effect of amino acids. This effect is particularly effective when such amino acids are present in a total or in each case at a concentration of 0.1M to 1M, preferably at a total concentration of 100mM to 300mM. Preferably, the amino acid is one or more from the group comprising glycine, alanine, proline, serine, threonine, glutamic acid and aspartic acid.

[0052] A further embodiment of the invention is the combination of the rapid pH-dependent fixation with an additional preservative active ingredient from the group of formaldehyde donors. Such an active ingredient can be, for example, diazolidinyl urea or imidazolidinyl urea.

[0053] Preferably, the composition of the solution according to the invention is also such that the osmolarity does not exceed 1 osmolarity. Preferably, the osmolarity of the solution is greater than 100 and less than 500 osmolarity, preferably between 250 and 350 osmolarity. The solution is particularly preferably isotonic or forms an isotonic environment for the cell or cells to be stored.

[0054] In some embodiments of the present invention, the formulation of the solution according to the present invention does not completely prevent blood clotting. It is known to those skilled in the art that these clotting phenomena can be prevented by adding complexing agents, anticoagulants or inhibitory antibodies. The presence of such complexing agents, anticoagulants or antibodies in the solution according to the present invention thus leads to further preferred embodiments of the present invention. In a preferred embodiment, MgSO4, dabigatran or / and plasminogen activator (t-PA) are present as anticoagulants in the solution according to the present invention.

[0055] A further aspect of the present invention is the use of a solution according to the invention for preserving, preserving or / and fixing cells, in particular at least one eukaryotic cell, in particular tumor cells and circulating tumor cells in a blood sample or other body fluid, cells from cell culture or cells in a tissue, preferably with subsequent or time-delayed molecular analysis.

[0056] This use according to the invention is characterized in that the solution is mixed with a blood sample or other body fluid, with cells from a cell culture in a corresponding medium, or with a tissue containing cells, preferably directly after collection.

[0057] The molecular analysis may relate to any substance or group of substances present in the cell, in particular the genome, the transcriptome and the proteome. Preferably, a transcriptome analysis is carried out as molecular analysis on at least one cell after treatment with a solution according to the invention.

[0058] A particular feature of the present invention is the possibility of qualifying almost intact cells based on specific characteristics and using this qualification to perform molecular analysis. Preferably, the mixture of different cells treated with the solution according to the invention is analyzed for a marker. Preferably, this is a morphological marker (e.g. analyzed by FSC / SSC in flow cytometry) or a morphometric marker (e.g. labeled antibodies for binding to surface proteins). Thereby, the mixture can consist of two, three or more different cell populations. Preferably, this marker is used to qualify at least one cell for the analysis of cellular components, particularly preferably the transcriptome.

[0059] It may be preferable to add at least one enzyme for tissue digestion to the solution according to the invention in order to release individual cells from the tissue structure. Preferably, the at least one enzyme is collagenase, dispase, or a combination thereof.

[0060] It may be preferable to store at least one cell treated with a solution according to the invention. It may be preferable to store it at 2-8° C. Alternatively, it may be preferable to perform this storage in a frozen state.

[0061] The use according to the invention preferably comprises at least: an input step a) treatment of cells or tissues with a solution suitable for the use, and an output step f) molecular analysis of the transcriptome of at least one cell.

[0062] Preferably, the use comprises one or more of further steps which can be carried out individually or in combination between the input and output steps depending on the object under test and the purpose of the test, namely step b) qualification of at least one cell for transcriptome analysis by morphological or morphometric selection, c) storage of the cells in a frozen state, d) storage of the cells at 2-8°C, e) protease digestion of the tissue to give individual cells.

[0063] In the context of these aspects of the use of the present invention, it is particularly advantageous to provide the solution in a sample tube or blood collection tube or syringe or another suitable container, such as a blood collection syringe, from before.In particular, this allows the body fluid to be mixed directly with the solution according to the present invention after collection, thus preventing distortion of the analysis, for example due to enzymatic activity.The corresponding sample tube or blood collection tube or syringe or other reaction vessel containing the solution according to the present invention also represents a further subject of the present invention.

[0064] In this respect, it is again particularly preferred to present the solution according to the invention in concentrated form, in order to avoid strong dilution of the sample. As an alternative to providing the solution in a sample tube or the like, the mixing can also be carried out immediately after taking the blood sample or body fluid.

[0065] Sample tubes, blood collection tubes or syringes and other containers containing the solution according to the invention can be used in the context of the use according to the invention.However, like the solution according to the invention itself, these objects are also suitable for carrying out other methods, such as cell-free DNA / RNA analysis.Use for such purposes is also encompassed by the invention.

[0066] All statements made above regarding the solution according to the invention also apply to the use of this solution according to the invention as well as to prefabricated test tubes or blood collection tubes containing the solution according to the invention. EXAMPLES

[0067] The following examples, in conjunction with the drawings, further explain the invention.

[0068] Example 1 In this example embodiment, a solution according to the invention was used having the following composition: In this example, the solution according to the invention is composed as follows: 23 mM glucose, 53 mM imidazole, 11 mM Hepes, 5 mM aspartic acid, 40 mM glutamic acid, 12 mM proline, 24 mM serine, 3.5 mM threonine, 32 mM alanine, 56 mM glycine, 10 mM MgSO4, 0.09% sodium azide, 150 mM acetic acid, pH 2.2 with HCl

[0069] The solution has a pH of 2.2 at a temperature of 20°C.

[0070] 2mL of this solution is placed in a blood collection syringe. Using the syringe thus prepared, 8mL of blood is collected from the test subject and the mixture according to the present invention is prepared at the same time. The blood thus fixed can be stored at 4°C to 20°C for subsequent analysis of the mixture for the presence of CTCs, for example within 24 hours, by microscopic or flow cytometric analysis. Any CTCs that may be present can also be directly isolated, for example via the affinity of surface markers to antibodies.

[0071] Example 2 HEK293 cells from cell culture were detached from the substrate using trypsin solution and harvested. The cells were incubated with live / dead dye followed by isolation of live cells. The cells were then incubated in excess of various solutions, namely FACS buffer, (sheath fluid, BD Biosciences), the solution according to the invention, 4% paraformaldehyde PFA solution, 3% glyoxal solution, DSP solution (Dithio-bis(succinimidyl propionate, a reversible cross-linker) or ACME solution (ACetic-MEthanol:water, methanol, glacial acetic acid, glycerol in a ratio of 13:3:2:2) for 5 hours at 4°C until further analysis. The cells were then lysed and mRNA was isolated. For comparison, fresh cells were lysed directly after harvesting.

[0072] In this example, the solution according to the invention is composed as follows: 23 mM glucose, 53 mM imidazole, 11 mM Hepes, 5 mM aspartic acid, 40 mM glutamic acid, 12 mM proline, 24 mM serine, 3.5 mM threonine, 32 mM alanine, 56 mM glycine, 0.09% sodium azide, acetic acid (15 mM) added, pH 5.3.

[0073] cDNA for total cellular mRNA of the differently treated cells was generated by reverse transcription and sequenced.

[0074] Comparison of cDNA for different samples showed that a very high cDNA integrity was observed for cells stored in the solution according to the invention, while other storage solutions or buffers ensured a clearly unfavorable preservation of the cell transcriptome. Figure 3 shows the results in a graph format, where the cDNA profile with the highest peak represents the results for freshly harvested cells. The cDNA profile with the second highest peak represents the solution according to the invention, which is very similar to the cDNA profile of fresh cells, being the most similar in comparison, while the profiles of the other solutions deviate very strongly from the profile of fresh cells or do not resemble it at all.

Claims

1. 1. Use of a solution for the preservation, preservation or fixation of at least one eukaryotic cell, in particular tumor cells and circulating tumor cells in a blood sample or another body fluid, or of cells from cell culture or of cells in a tissue sample, comprising: That is, a) containing a cell-permeable proton carrier, wherein the proton carrier is C 2 ~C 5 selected from carboxylic acids or mixtures of such carboxylic acids or other acids that are membrane permeable in the protonated form, and exist as an acid / base system, producing a pH value in the acidic range; b) does not contain chaotropic substances, alcohols or detergents in amounts that disrupt the morphological integrity of the cells; c) maintaining the morphological integrity of the cells; and d) having a pH value that results in an intracellular pH of the cell of less than 6 The use, characterized in that it is an aqueous solution.

2. 2. Use according to claim 1, characterized in that the acid / base system is in solution.

3. 3. Use according to claim 1 or 2, characterized in that the acid / base system is present in a concentration of 1 mM to 100 mM, preferably 5 mM to 50 mM, particularly preferably 10 mM to 20 mM.

4. 3. Use according to claim 1 or 2, characterized in that the acid / base system is made up as a 2- to 20-fold concentrate, particularly preferably as a 5-fold concentrate.

5. 3. Use according to claim 1 or 2, characterized in that the solution further contains a strong acid, preferably hydrochloric acid or another mineral acid, to adjust the intracellular pH value.

6. 3. Use according to claim 1 or 2, characterized in that the pH value of the solution after mixing with cells or other biological material is an acidic pH, preferably between 4 and 6, particularly preferably between 4.5 and 5.5, most preferably 5.3, in each case measured at 20°C.

7. 3. Use according to claim 1 or 2, characterized in that the solution further contains a buffer substance or a proton carrier.

8. 3. Use according to claim 1 or 2, characterized in that the solution contains imidazole or / and DMSO.

9. 3. Use according to claim 1 or 2, characterized in that the solution comprises at least one sugar, preferably selected from the group of mono- or disaccharides, and / or at least one amino acid, preferably selected from the group comprising glycine, alanine, proline, serine, threonine, glutamic acid, aspartic acid.

10. 10. Use according to claim 9, characterized in that the one or more amino acids are present in a concentration of 0.1 M to 1 M in total or in each case, preferably in a total concentration of 100 mM to 300 mM.

11. 3. Use according to claim 1 or 2, characterized in that the solution further contains a preservative active ingredient from the group of formaldehyde donors, in particular diazolidinyl urea or imidazolidinyl urea.

12. 3. Use according to claim 1 or 2, characterized in that the osmotic pressure of the solution does not exceed 1 osmole, preferably less than 500 mOsmole, creating an isotonic environment, in particular for the eukaryotic cell or cells to be preserved.

13. 3. Use according to claim 1 or 2, characterized in that the solution contains a complexing agent or an anticoagulant or an inhibitory antibody.

14. Use according to claim 13, characterized in that the anticoagulant is selected from MgSO4, dabigatran, plasminogen activators or any mixture of these substances.

15. 3. Use according to claim 1 or 2, wherein the solution is mixed with a blood sample or a body fluid, the cell culture or tissue sample is mixed directly after withdrawal, or / and the solution is provided in a sample tube, blood collection tube or blood collection syringe, and the blood sample, body fluid, cell culture or tissue sample is added to this container, wherein the solution is provided or added, preferably in concentrated form.

16. 3. The use of claim 1 or 2, wherein the cell or cells remain substantially intact and RNA from at least one cell is used for transcriptome analysis.

17. 3. The use of claim 1 or 2, wherein morphological analysis of at least one marker protein of the cell or cells is used to qualify at least one cell for transcriptome analysis.

18. Use according to claim 1 or 2, comprising an input step a) mixing cells in a liquid or tissue with a solution according to claim 1 or 2, and an output step f) molecular analysis of the transcriptome of at least one cell.

19. 20. The use of claim 18, comprising one or more intermediate steps selected from: b) qualification of at least one cell for transcriptome analysis by morphological or morphometric selection; c) storage of the cells in a frozen state; d) storage of the cells at 2 to 8°C; e) protease digestion of the tissue to yield individual cells.

20. A solution for the preservation, storage or fixation of at least one eukaryotic cell, in particular tumor cells and circulating tumor cells in a blood sample or another body fluid, or of cells from cell culture or of cells in a tissue sample, comprising: a) containing a cell-permeable proton carrier, wherein the proton carrier is C 2 ~C 5 selected from carboxylic acids or mixtures of such carboxylic acids, or other acids that are membrane permeable in their protonated form, and exist as an acid / base system, producing a pH value in the acidic range); b) does not contain chaotropic substances, alcohols or detergents in amounts that disrupt the morphological integrity of the cells; c) maintain the morphological integrity of the cells; and d) having a pH value of less than 6, resulting in an intracellular pH of the cell of less than 6; A sample tube, a blood collection syringe or a blood collection tube, characterized by containing the solution.