METHOD FOR CHARACTERIZING A BIOLOGICAL MICROTISSUE USING IMAGING
Patent Information
- Application Number
- AT2021718513T
- Authority / Receiving Office
- AT · AT
- Patent Type
- Patents
- Current Assignee / Owner
- Priority Date
- 2020-03-27
- Filing Date
- 2021-03-26
- Publication Date
- 2026-06-15
- Estimated Expiration
- 2041-03-26
AI Technical Summary
Current imaging techniques for biological micro-tissues are invasive, destructive, and unsuitable for live cell characterization, particularly during cell culture, as they require fixation or genetic modification, and are limited in their ability to measure parameters of thick tissues or cell aggregates.
A phase measurement technique without a reference beam is used to characterize living biological micro-tissues, reducing speckle contrast and allowing for high-throughput, quantitative analysis of biomass, cell viability, and tissue organization without destroying or modifying the cells.
Enables non-invasive, rapid, and complete characterization of living biological micro-tissues, allowing for the measurement of biomass increase, cell differentiation, and phenotype determination, making it suitable for research and therapy applications.
Abstract
Description
[0001] Description
[0002] Title of the invention: METHOD FOR CHARACTERIZING A BIOLOGICAL MICRO-TISSUE BY
[0003] IMAGING
[0004] The present invention relates to the characterization by imaging of biological tissues, in particular of biological micro-tissues.
[0005] In both research and therapy, it is essential to be able to characterize living biological cells and tissues, particularly during or after cell culture, notably to control cell proliferation and / or cell and tissue quality and / or to monitor cell differentiation and / or to monitor tissue organization and / or to determine the phenotype(s) of the cells constituting a tissue, etc.
[0006] However, current imaging techniques, particularly those employing fluorescence microscopy, histology, capacitance measurement, optical density and standard transmission imaging, do not allow this.
[0007] Fluorescence microscopy is used in conjunction with fluorescent probes such as antibodies or endogenous fluorescence to genetically modify cells. Several techniques employing fluorescence microscopy are commonly used, including confocal microscopy, selective plane illumination microscopy (SPIM), multiphoton microscopy, and flow cytometry (facs). These techniques are well-established, but they require fixation (resulting in cell death) and / or limit conditions (labeling only extracellular proteins) or are incompatible with cell culture for cell therapy purposes, such as the addition of non-GMP products that are destructive or cause genetic modification of cells. Therefore, they are not suitable for characterizing living tissues because they are invasive, often destructive, and very slow.
[0008] Histological techniques involve fixing and then labeling tissues. These techniques again result in cell destruction and present the same drawbacks as fluorescein microscopy. Biomass measurement using a capacitance probe is based on the assumption that living cells can be considered capacitors. This measurement therefore only takes into account the accessible outer surface of cells with an intact membrane. The case of cell aggregates and microtissues is more complex and depends on the tightness of the connections between cells. Unlike the previous methods, this one is non-invasive, but it only provides information on the inaccessible volume or the surface area of that volume, which is too limiting and imprecise for tissue characterization.
[0009] Standard transmission imaging techniques, such as quantitative phase contrast, are rapid and non-invasive. Phase measurement in imaging is the measurement of the local delay of a light beam after interaction with the object under study. Devices used for phase imaging are based on the phenomenon of optical interference to encode phase information into light intensity information. Various phase imaging techniques for microscopy are described, notably in (Park, Y., Depeursinge, C. & Popescu, G. Quantitative phase imaging in biomedicine. Nature Photon 12, 578-589 (2018) doi:10.1038 / s41566-018-0253-x). Phase imaging is currently used for the characterization of thin samples (isolated cells or micro-tissue sections less than 10pm thick) but is not usable for larger micro-tissues or tissues.Indeed, the techniques currently used in phase imaging do not allow for a quantitative measurement of phase in a tissue. They remain qualitative and not quantitative, and are therefore difficult to use for the characterization of thick objects.
[0010] Finally, optical density measurement, obtained through phase measurements and allowing access to the sample mass, cannot characterize tissues larger than 1 Opm. The objective of the invention is to overcome these various limitations of the prior art and to propose a solution for a complete, rapid, and non-invasive in vitro characterization method for living tissues, enabling the characterization, in particular, of living biological micro-tissues, notably during or at the end of cell culture, for research or therapy purposes. Summary of the invention
[0011] According to the invention, the measurement of phase as currently carried out on very thin cells and micro tissues necessarily uses a reference beam which leads to an absolute measurement which is unsuitable because it does not allow the measurement of mass and the quantification of a number of parameters.
[0012] Therefore, to achieve the objective of the invention, the inventors have developed an in vitro characterization method for human, animal, or plant biological microtissues with a smallest dimension greater than or equal to 20 µm. This method consists of using a phase measurement technique without a reference beam and does not require fluorescent labeling. Indeed, according to the invention, only phase measurement techniques without a reference beam, that is, indirect measurement techniques, also known as relative phase measurements, can be used to characterize microtissues with a smallest dimension greater than or equal to 20 µm. Furthermore, according to the invention, it is important to manage the coherence of the beam used for illumination.In particular, the coherence at the sample level should be such that the speckle generated by the sample (microtissue) is reduced; preferably, the speckle contrast should be less than 75% of a maximum unit contrast, even more preferably 50%, and ideally 10%. In practice, this speckle reduction is achieved by decreasing spatial and / or temporal coherence. The spatial coherence of the illumination should preferably be such that the numerical aperture of the illumination does not exceed 90%, even more preferably 50%, and ideally 25% of the numerical aperture of the imaging system, so as to measure the sample parameters independently of beam coherence.
[0013] Advantageously, the use of a reference beam-free phase measurement technique allows for high-throughput quantitative characterization of living biological micro-tissues without destroying or altering them.
[0014] This allows, in particular, for:
[0015] - to measure the increase in biomass of a micro-tissue during its culture and / or amplification,
[0016] - to determine cell viability,
[0017] - to control the quality of a micro-fabric,
[0018] - to monitor the differentiation and / or organization of a micro-tissue during its maturation,
[0019] - determine the phenotype of micro-tissue cells, and / or
[0020] - confirm the absence of undifferentiated cells in the micro-tissue.
[0021] The invention therefore also relates to the use of the characterization process for these applications in particular.
[0022] Brief description of the Figures
[0023] - Figure 1 is an image of hydrogel capsules containing pluripotent induced human cells, obtained by phase-measurement imaging without a reference beam, according to the protocol described in the example.
[0024] - Figure 2 is an image of hydrogel capsules containing pluripotent human cells, obtained by phase intensity imaging (absolute measurement), according to the protocol described in the example. - Figure 3 is a schematic representation of the implementation of a variant of the online method for characterizing biological microtissues contained in a bioreactor.
[0025] - Figure 4 is a schematic representation of the reference beam-free phase measurement imaging system used for the characterization process according to the invention described in Example 1.
[0026] - Figure 5a represents images taken according to the method according to the invention of micro-tissues from the encapsulation of induced human stem cells (Gibco Human Episomal) in alginate capsules after 6 days of culture in a growth medium (MTesrl supplemented) according to the protocol of example 2. The micro-tissue is composed of stem cells forming a single cyst and meeting criteria of homogeneity of cell distribution and roundness allowing them to be classified in the category of acceptable micro-tissues.
[0027] - Figure 5b represents images taken according to the process according to the invention of micro-tissues from the encapsulation of induced human stem cells (Gibco Human Episomal) in alginate capsules after 6 days of culture in a growth medium (MTesrl supplemented) according to the protocol of example 2. The micro-tissue is composed of stem cells forming several cysts and / or exhibiting inhomogeneity in cell distribution and roundness allowing them to be classified in the category of unacceptable micro-tissues.
[0028] Figure 5c (left) shows an image taken according to the method of the invention of microtissues obtained from the encapsulation of induced human stem cells (Gibco Human Episomal) in alginate capsules after 6 days of culture in a supplemented growth medium (MTesrl). Figure 5c (right) shows the same object acquired using multi-photon microscopy. The cell nuclei are labeled with 10 µg / mL Hoechst 33342 (Thermofisher). Approximately half of the cells are visible. The total number of cells is approximately 500.
[0029] - Figure 6 is a graphical representation of the comparative results of mass and surface area measurements between stem cell microtissues in alginate capsules at different times (1 to 6 days) after encapsulation, showing the quadratic growth of mass and the diversity of mass and maturity for samples produced at the same time according to example 2,
[0030] - Figure 7 is a graphical representation of the comparative results of normalized mass measurement at the surface between capsules containing micro-tissues and empty capsules according to example 2.
[0031] Definitions By "local absorption" of the micro-tissue in the sense of the invention, we mean the attenuation of light due to a local photon loss by absorption of light and not diffusion.
[0032] For the purposes of this invention, "alginate" means linear polysaccharides formed from bD-man-nuronate and aL-guluronate, salts and derivatives thereof.
[0033] For the purposes of this invention, "hydrogel capsule" means a three-dimensional structure formed from a matrix of polymer chains swollen by a liquid, preferably water.
[0034] For the purposes of this invention, "human cells" means human cells or immunologically humanized non-human mammalian cells. Even when not explicitly stated, the cells, stem cells, progenitor cells, and tissues according to the invention are constituted or obtained from human cells or from immunologically humanized non-human mammalian cells.
[0035] For the purposes of this invention, a "progenitor cell" is defined as a stem cell already engaged in cellular differentiation (for example, into retinal cells) but not yet differentiated. A progenitor cell is a cell that tends to differentiate into a specific cell type. It is therefore already more specific than a stem cell. Progenitor cells can only divide a limited number of times, as they are naturally subject to telomere erosion.
[0036] For the purposes of this invention, "embryonic stem cell" refers to a pluripotent stem cell derived from the inner cell mass of the blastocyst. The pluripotency of embryonic stem cells can be assessed by the presence of markers such as the transcription factors OCT4 and NANOG, and surface markers like SSEA3 / 4, Tra-1-60, and Tra-1-81. Embryonic stem cells can be obtained without destroying the embryo from which they are derived, for example, using the technique described in Chang et al. (Cell Stem Cell, 2008, 2(2)): 113-117). Optionally, embryonic stem cells from human organisms may be excluded.
[0037] For the purposes of this invention, a "pluripotent stem cell" or "pluripotent cell" is defined as a cell capable of forming all the tissues present in the entire organism of origin, without, however, being able to form an entire organism as such. This may include, in particular, induced pluripotent stem cells, embryonic stem cells, or MUSE cells (for "Multilineage-differentiating Stress Enduring"). Pluripotent stem cells maintain the length of their telomeres and can retain the ability to divide without a clear limit on the number of cell cycles, unlike progenitor cells. For the purposes of this invention, an "induced pluripotent stem cell" is defined as a pluripotent stem cell induced to pluripotency by genetic reprogramming of differentiated somatic cells.These cells are notably positive for pluripotency markers, such as alkaline phosphatase staining and the expression of NANOG, SOX2, OCT4 and SSEA3 / 4 proteins. Examples of methods for obtaining induced pluripotent stem cells are described in the articles Yu et al. (Science 2007, 318 (5858): 1917-1920), Takahashi et al (Cell, 2007, 131(5): 861-872) and Nakagawa et al (Nat Biotechnol, 2008, 26(1): 101-106).
[0038] By "differentiated" cells in the sense of the invention we mean cells that exhibit a particular phenotype, as opposed to pluripotent stem cells which are not differentiated.
[0039] By "coherence" of the beam in the sense of the invention, we mean the spatio-temporal coherence namely the spatial extent and spectral width of the illumination source.
[0040] By "density" of the micro-tissue in the sense of the invention, we mean the mass of a unit volume divided by the mass of the same volume of culture medium.
[0041] For the purposes of this invention, "micro-tissue" or "biological micro-tissue" means a biological tissue or a sample of biological tissue whose largest dimension is less than or equal to 1 cm.
[0042] For the purposes of this invention, "phase" means the light wavefront delay, relative phase shift, and optical path difference between the micro-tissue environment and the baseline level of the medium in which it is immersed.
[0043] For the purposes of this invention, "phase measurement technique" means any technique capable of quantitatively measuring the phase of light.
[0044] For the purposes of this invention, "reference beam-free phase measurement technique" means techniques capable of determining the phase component of light without using an external, so-called "reference" beam that has not interacted with the micro-tissue.
[0045] For the purposes of this invention, "tissue" or "biological tissue" refers to the common biological meaning of tissue, that is, the intermediate level of organization between the cell and the organ. A tissue is a group of similar cells of the same origin (most often derived from a common cell lineage, although they may originate from the association of distinct cell lineages), grouped into clusters, networks, or bundles (fibers). A tissue forms a functional unit, meaning that its cells work together to perform the same function. Biological tissues regenerate regularly and are assembled to form organs. A tissue may include differentiated cells and stem cells. Typically, pluripotent stem cells form an epithelial-type tissue, described as epiblastic (citation: Self-organization of the human embryo in the absence of maternal tissues, Shahbazi et al., Nat Cell Biol. 2016, doi: 10.1038 / ncb3347).
[0046] By "texture" of a micro-fabric in the sense of the invention, we mean the local roughness of the image and its local frequency content.
[0047] Detailed description
[0048] The invention therefore relates to a method for the in vitro characterization of a biological microtissue from a eukaryote, in particular a human, animal, or plant microtissue, the smallest dimension of which is greater than or equal to 20 µm, and more preferably greater than or equal to 30 µm. The method consists of characterizing the biological microtissue in its entirety and not just a part of it.
[0049] Biological micro-tissue is preferably a micro-tissue whose largest dimension is less than or equal to 10 mm, even more preferably less than or equal to 1 mm and in particular less than or equal to 500 pm, especially less than or equal to 200 pm.
[0050] Biological micro-tissue can be a micro-tissue comprising eukaryotic cells, particularly human cells, or animal (non-human) cells, notably amniotic cells and in particular mammalian cells, or plant cells.
[0051] Biological microtissue, when it is human or animal microtissue, can for example be chosen from epithelial, connective, muscular or nervous microtissues.
[0052] According to one embodiment, the micro-tissue may include, in particular:
[0053] - differentiated cardiac cells or retinal cells or neural cells or liver cells or chondrocytes or keratinocytes or lymphoid cells or hematopoietic stem cells or mesenchymal stem cells, and / or:
[0054] - progenitor stem cells
[0055] - endothelial cells.
[0056] According to another embodiment, the micro-tissue may comprise or be made up of pluripotent cells in the form of an epiblast.
[0057] Biological microtissue, whether human or animal, can be selected from various stages of embryonic or fetal development, particularly early stages, for in vitro fertilization for reproductive purposes (in humans or animals), research (in humans or animals), or animal production. Biological microtissue, when plant-based, can be selected from meristems, parenchyma, vascular tissue, supporting tissue, covering or protective tissue, secretory tissue, and nutritive tissue.
[0058] The microtissue may be at least partially surrounded by an extracellular matrix. The cellular matrix layer may consist of cellular matrix secreted by microtissue cells and / or added extracellular matrix. The extracellular matrix layer may form a gel. It preferentially comprises a mixture of proteins and extracellular compounds necessary for culturing the cells constituting the microtissue. Preferably, the extracellular matrix includes structural proteins, such as collagen, laminins, entactin, vitronectin, and growth factors, such as TGF-beta and / or EGF. The extracellular matrix layer may consist of or include Matrigel. ® and / or Geltrex ®and / or a hydrogel-type matrix of plant origin such as modified alginates or of synthetic origin or of poly(N-isopropylacrylamide) and poly(ethylene glycol) copolymer (PNIPAAm-PEG) type Mebiol ® .
[0059] According to one variant, the microtissue may be encapsulated in a microcompartment or capsule comprising an outer hydrogel layer, such as the microcompartments described in patent application WO2018 / 096277. This is referred to as a hydrogel capsule. Preferably, the hydrogel used is biocompatible, meaning it is not toxic to cells. The hydrogel capsule must allow the diffusion of oxygen and nutrients to nourish the cells within the microcompartment and enable their survival. The outer hydrogel layer may contain alginate or be composed exclusively of alginate. The alginate can be in particular a sodium alginate, composed of 80% a-L-guluronate and 20% bD-mannuronate, with an average molecular mass of 100 to 400 kDa and a total concentration between 0.5 and 5% by mass.The hydrogel capsule helps to protect cells from the external environment and to limit uncontrolled cell proliferation.
[0060] Microtissue can exist in any three-dimensional form; that is, it can take the shape of any object in space. For example, it can be a hollow or solid ovoid, a hollow or solid cylinder, a tuboid or hollow or solid tube, a spheroid or hollow or solid sphere, or a partially folded monolayer (2.5D). It is the outer layer of the microtissue, or the extracellular matrix layer when present, that gives the microtissue its size and shape. An example of a solid microtissue is the cardiac spheroid used in bioproduction (https: / / doi.org / 10.1016 / i.bbamcr.2015.ll.036).
[0061] According to one embodiment of the invention, the micro-tissue can be a human or animal biological micro-tissue intended to be grafted into humans or animals.
[0062] The micro-tissue during the implementation of the process can be produced on a living micro-tissue, frozen or unfrozen.
[0063] The method according to the invention includes the characterization of the micro-tissue by imaging using a phase measurement technique without a reference beam.
[0064] Preferably, it is important to manage the coherence of the beam used for illumination. In particular, the coherence at the microtissue level should be such that the speckle generated by the sample (microtissue) is reduced; preferably, the speckle contrast should be less than 75% of the unit contrast, even more preferably 50%, and ideally 10%. In practice, this speckle reduction is achieved by decreasing the spatial and / or temporal coherence. The spatial coherence of the illumination should preferably be such that the numerical aperture of the illumination does not exceed 90%, even more preferably 75%, and ideally 50% of the numerical aperture of the imaging system, so as to measure the sample (microtissue) parameters independently of the beam coherence.
[0065] According to a particularly suitable embodiment, the process is carried out with a spatially semi-coherent beam, that is to say: the spectral width of the source, that is to say the spectral range of the illumination also called the wavelength of illumination (corresponds to the temporal coherence of illumination) is a minimum of 5 nm in the visible and a maximum of 600 nm; ideally about 100 nm, for example 100 nm; and the numerical aperture of illumination (corresponding to the spatial coherence of illumination) is a minimum of 5% and a maximum of 90% of the numerical aperture of the imaging system, ideally about 50%, for example 50%.
[0066] This characteristic makes it possible in particular to guarantee a quantitative measurement of the comparable phase regardless of the sample (micro-tissue) and the illumination parameters while measuring the parameters of the micro-tissue in its entirety.
[0067] Preferably, the phase measurement technique without a reference beam is chosen from:
[0068] - Wavefront analysis - Dynamic modulation of the phase or light intensity in the pupil of the illumination or imaging system
[0069] - Multiple light intensity imaging with modification of the focus plane.
[0070] When the phase measurement technique without a reference beam is wavefront analysis, it is preferably performed using wavefront gradient imaging, and in particular a wavefront gradient imaging technique chosen from:
[0071] - the Shack-Hartmann method (Gong, H. et al. Optical path difference microscopy with a Shack Hartmann wavefront sensor. Opt. Lett. (2017) oi:10.1364 / OL.42.002122),
[0072] - the modified (or unmodified) Hartmann method (Bon, P., Maucort, G., Wattellier, B. & Monneret, S. Quadriwave lateral shearing interferometry for quantitative phase microscopy of living cells. Opt. Express 17, 13080-13094 (2009)),
[0073] - pupil partitioning (Parthasarathy, AB, Chu, KK, Ford, TN & Mertz, J. Quantitative phase imaging using a partitioned detection aperture. Opt. Lett. 37, 4062-4064 (2012)),
[0074] - speckle field imaging (Berto, P., Rigneault, H. & Guillon, M. Wavefront sensing with a thin diffuser. Opt. Lett. 42, 5117-5120 (2017)).
[0075] Preferably, the phase measurement technique without a reference beam used in the method according to the invention is the modified Hartmann method because it is the technique that allows the best compromise in terms of stability, sensitivity and compactness for the characterization of micro-tissues.
[0076] When the phase measurement technique without a reference beam is dynamic modulation of the phase or light intensity in the pupil of the illumination or imaging system, it is preferably performed using:
[0077] - ptychography (Zheng, G., Horstmeyer, R. & Yang, C. Wide-field, high-resolution Fourier ptychographic microscopy. Nat. Photonics 7, 739 (2013)), or
[0078] - selective phase modulation of certain frequencies in the pupil (Wang, Z. et al. Spatial light interference microscopy (SLIM). Opt. Express 19, 1016-1026 (2011)).
[0079] Preferably, the phase measurement technique without a reference beam used in the method according to the invention is ptychography, since phase quantification is more direct than with selective phase modulation, which yields only limited quantitative images. When the phase measurement technique without a reference beam is multiple light intensity imaging with a change in the focal plane, it is preferably performed using:
[0080] - simultaneous multiplane imaging (Descloux, A. et al. Combined multi-plane phase retrieval and super-resolution optical fluctuation imaging for 4D cell microscopy. Nat. Photonics 12, 165-172 (2018)) or sequential multiplane imaging (Soto, JM, Rodrigo, JA & Alieva, T. Label-free quantitative 3D tomography imaging for partially coherent light microscopy. Opt. Express 25, 15699-15712 (2017) or Barty, A., Nugent, KA, Paganin, D. & Roberts, A. Quantitative optical phase microscopy. Opt. Lett. 23, 817-819 (1998)).
[0081] Preferably, the phase measurement technique without a reference beam used in the method according to the invention is the simultaneous technique, because it is fast, even if it has greater complexity than sequential multiplane imaging.
[0082] Regardless of the phase measurement technique without a reference beam, the com process preferentially measures the phase and possibly the light intensity of the light that has passed through the micro-tissue.
[0083] Preferably, the method according to the invention is a method for in vitro characterization of a biological microtissue of eukaryote by imaging using a phase measurement technique without a reference beam, said method comprising at least the study of the organization of cells in the microtissue, preferably at least the topology of the microtissue and / or the relative positioning of cells in the microtissue.
[0084] According to a preferred embodiment, the process includes the measurement:
[0085] - of the micro-tissue density, based on phase measurement, and
[0086] - possibly from the local absorption of the micro-tissue, from the measurement of the phase and the measurement of the light intensity of the light that has passed through the micro-tissue.
[0087] The density of the micro-tissue can be measured from the phase measurement as follows:
[0088] 1) the area of the image containing the micro-tissue (called the useful area) is separated from the rest (called the background, usually the culture medium);
[0089] 2) the value of the background phase is subtracted from the phase of the useful zone;
[0090] 3) after this subtraction, the phase is converted if necessary into optical path difference (expressed in metric units) and summed over the entire useful area;
[0091] 4) This value is multiplied by the area of an elementary pixel of the image, projected onto the object plane: this yields a value in metric units cubed; 5) This quantity is divided by the specific refractive index (Barer, Interference microscopy and mass determination, Nature, 1952), which is 0.18 pm 3 / pg on average and which can be adjusted for each tissue: this gives a measurement of the so-called dry mass (total mass - mass of the culture medium) integrated over the whole sample (micro-tissue).
[0092] A comparative and descriptive overview of this technique is available (Zangle, T. and Teitell, MA, Live-cell mass profiling: an emerging approach in quantitative biophysics, Nature Methods, 2014)
[0093] Density is expressed in mass units (g).
[0094] The local absorption of the micro-tissue can be measured from the phase and intensity measurements of the light that has passed through the micro-tissue as follows. By jointly measuring the phase f and the intensity λ, we obtain the electromagnetic field E = Ie l<p This complex quantity can be decomposed by extracting the real and imaginary parts in the numerical Fourier space of the electromagnetic field (via a Fourier transform). By returning to the direct space (via an inverse Fourier transform) of the real component of the Fourier space, we can derive the local absorption component. The absorption measurement is expressed in photons / cm². 2 .
[0095] Preferably, the method according to the invention comprises measuring at least one of the following parameters:
[0096] - dimensions of the micro-fabric
[0097] - dimensions of at least one of the cells of the micro-tissue
[0098] - number of cells in the micro-tissue
[0099] - overall and local mass of the micro-tissue
[0100] - overall and local density of micro-tissue
[0101] - mass distribution in the micro-tissue
[0102] - organization of cells in the microtissue: topology of the microtissue and / or relative positioning of cells within the microtissue
[0103] - viability of micro-tissue cells
[0104] - texture.
[0105] The dimensions of the micro-tissue can be measured from the phase measurement as follows. The dimensions in the image plane are extracted by automatic clipping (e.g., Otsu-type edge detection algorithm, or manual clipping) and the dimensions are obtained by fitting the clipping with an ellipse (in the case of an ovoid micro-tissue).
[0106] The dimensions are expressed in micrometers. The dimensions of one or more cells of the microtissue can be measured from the phase measurement as follows. When the optical resolution is better than the cell size, manual or automatic contouring is performed within the microtissue (edge detection algorithm or watershed). The dimensions are then obtained by fitting each automatic contour with an ellipse.
[0107] The dimensions of a cell are expressed in micrometers.
[0108] The overall mass of the microtissue can be measured from the phase measurement as follows. The sum of the phase information (in the optical path sense, expressed in pm) over the area containing the microtissue (obtained by automatic or manual clipping) is then multiplied by the area of a phase pixel brought back into the object space (expressed in pm). 2) then multiplied by the specific increment (usually 0.18pg / pm3) to obtain the overall mass measurement.
[0109] The total mass is expressed in micrograms.
[0110] The local mass of the microtissue can be measured from the phase measurement as follows. The same procedure as for the previous point is applied, but summing the phase only over a chosen portion of the microtissue.
[0111] Local mass is expressed in micrograms.
[0112] The overall density of the microtissue can be measured from the phase measurement as follows. Mass is measured from the phase. Transverse dimensions in the image plane are obtained from the phase image. The dimension in the plane orthogonal to the phase image (called thickness) is obtained: a) either by a 3D reconstruction of the object in different imaging planes, b) or by an assumption about the shape of the object (generally ovoid), or c) by an assumption about the average optical refractive index of the microtissue and the medium, which allows, by dividing the phase (in the sense of the optical path difference) by the refractive index difference, the thickness of the microtissue to be determined. The three dimensions are combined to obtain the volume of the sample (microtissue). Dividing the mass by the volume gives the density.
[0113] The overall density is expressed in g / cm³ 3
[0114] The local density of the microtissue can be measured from the phase measurement as follows. The same protocol as for measuring overall density is used, but restricting the measured area to a sub-section of the microtissue. The local density is expressed in g / cm³. 3 .
[0115] The mass distribution in the microtissue can be measured from the phase measurement as follows. Local mass measurements are performed on sub-sections of the microtissue, covering all or part of the microtissue. A statistical analysis of these masses (standard deviation / standard deviation, mean / median) is then performed.
[0116] Mass distribution is expressed in grams.
[0117] The organization of cells in microtissue is understood in the histological sense, as assessed by experts in the field, and describes the tissue topology and the relative positioning of cells and extracellular matrix elements. The viability of microtissue cells can be assessed by measuring their phase as follows: local mass measurements are taken on sub-sections of the microtissue, covering all or part of it. A statistical analysis of these masses (standard deviation / standard deviation, mean / median) is then performed.
[0118] The mass distribution is then correlated with a conventional histological analysis to generate an analyzed and annotated training dataset. Algorithmic and / or directed machine learning (such as neural networks) can then be performed on this dataset to automate the process.
[0119] The organization of cells in the micro-tissue is therefore qualified by an expert system, human or non-human, based on histological classification.
[0120] Cell death phenomena cause a change in cell density and size detectable in phase. The viability of microtissue cells can be measured from phase measurements as follows: local mass measurements are performed on sub-sections of the microtissue, covering all or part of it. A statistical analysis of these masses (standard deviation / standard deviation, mean / median) is then performed. The mass distribution is then correlated with common viability measures such as ethidium bromide (dead cells) and calcein (living cells), identifying the percentage of living cells to generate a training dataset that is analyzed and annotated. Algorithmic and / or directed machine learning (such as a neural network) can then be performed on this dataset to automate the process.
[0121] Cell viability in micro-tissue is therefore expressed as a percentage of live cells out of the total number of cells.
[0122] The texture of micro-tissue can be measured from phase measurements as follows. Measuring the spatial variation statistics of the phase, including the standard deviation and frequency distribution of image structures within regions of interest, allows for the determination of texture parameters.
[0123] The texture is expressed in phase units and in (phase units) / pm. According to one embodiment, the process according to the invention can be carried out in vitro on microtissues that have been previously taken from a human, an animal, or a plant. The process can, for example, characterize the quality of an islet of Langerhans from a cadaver (in particular its viability) before transplantation in a diabetic patient, or characterize a pre-implantation embryo.
[0124] According to another embodiment, the process according to the invention can be carried out in vitro on microtissues comprising pluripotent stem or progenitor cells intended for differentiation, or on microtissues comprising cells undergoing differentiation, or on microtissues comprising differentiated cells obtained by cell culture from pluripotent stem or progenitor cells. The process according to the invention can be carried out in vitro on microtissues composed of pluripotent layer cells intended for differentiation, or on microtissues composed of cells undergoing differentiation, or on microtissues composed of differentiated cells obtained by cell culture from pluripotent stem or progenitor cells.
[0125] According to one embodiment, the process according to the invention is implemented online on the contents of a bioreactor. An example of such an embodiment applied to cell culture in capsules or microcompartments is shown in Figure S. In this example, capsules 12, each containing a microtissue, are suspended in a culture medium 14 in a bioreactor 10. Outlet means 16 arranged on the bioreactor allow the capsules 12 to be removed from their culture medium 14 and passed through a beamless phase-measuring imaging system 18.At the outlet of this system 18, the capsules containing microtissues that meet the quality criteria defined by the bioreactor user, referred to as normal capsules 12-1, are returned to their culture medium 14 via inlet means 20 into the bioreactor 10. The unwanted capsules 12-2, which do not meet the quality criteria defined by the bioreactor user, are collected via disposal means 22 for disposal. The outlet means 16 can be, for example, tubing and a peristaltic pump. The inlet means 20 can be, for example, tubing. The disposal means 22 can be, for example, a piezoelectric valve system. The system 18 can be any imaging system suitable for phase measurement without a reference beam, such as one of those described in this application.
[0126] This advantageously allows verification of the quality of micro-tissues, particularly online during differentiation or maturation. The process according to the invention, particularly when implemented during the differentiation or maturation of cells forming a micro-tissue in a bioreactor, can thus be carried out: i) in flow cells, i.e., by continuous recirculation of the contents of a bioreactor-type culture chamber within a sterile fluidic system for the purpose of analyzing and / or sorting the contents of said culture chamber, or ii) by taking a sample from outside the bioreactor to analyze a portion of said bioreactor at a specific point in time, typically during sampling for the purpose of analysis and / or reseeding a second bioreactor in a "seed train" and / or during a ramp-up and / or fragmentation of the bioreactor's contents into several chambers or quality control conditions.or iii) to sort micro-tissues offline during bioreactor emptying for purification or continuation of a production and / or differentiation and / or conditioning sequence.
[0127] The method according to the invention offers numerous advantages over currently used methods. In particular, it can be implemented without destroying or altering the microtissues studied, it is quick to implement, requires simple equipment, and allows the measurement of numerous physical parameters to characterize the microtissues, which was not possible with prior art methods.
[0128] The process can therefore be used for numerous applications. In particular, the invention relates to the use of the process for:
[0129] - to control the quality of a micro-tissue: indeed, the implementation of the process according to the invention makes it possible to measure characteristics of the micro-tissue such as its size, density, number of cells or texture which make it possible to verify the quality of a micro-tissue, and / or
[0130] - to measure the increase in biomass of a micro-tissue during its culture and / or amplification: indeed, the method according to the invention makes it possible to measure the overall or local mass of a micro-tissue and thus allows the monitoring of the increase in the number of cells in a micro-tissue during its culture, differentiation and / or amplification, and / or
[0131] - to monitor the differentiation and / or evolution of the topology of a microtissue during its maturation, and in particular the relative position in space of the cells composing it: indeed, the method according to the invention makes it possible to measure the mass distribution in the microtissue and / or the organization of the cells in the microtissue and / or the viability of the cells of the microtissue, during the differentiation and / or maturation of the cells of the microtissue, which provides information on the differentiation and / or maturation of said cells, and / or - to determine the phenotype of cells of the microtissue, indeed, the method according to the invention makes it possible to measure the mass of each cell and the texture of the microtissue, which provides information on the phenotype of said cells, and / or
[0132] - confirm the absence of undifferentiated cells in the micro-tissue: indeed, the measurement of cell mass and / or cell density, micro-tissue texture and / or cell organization in the micro-tissue provides information on the differentiation of micro-tissue cells and consequently the possible absence of differentiation of said cells.
[0133] In one particular embodiment, the microtissue can be an embryo. Thus, the method according to the invention can be used for screening embryos obtained by in vitro fertilization. The histological structure of a healthy embryo is typical, highly reproducible, and predictive of the success of embryo implantation in the mother. In particular, to describe this structure in an embryo intended for reimplantation, only label-free imaging solutions are feasible. To improve implantation rates and reduce the risk of failure or, conversely, multiple embryos, clinics are developing increasingly precise monitoring of the fertilized embryo before implantation, including video monitoring of development. The method according to the invention makes it possible to exclude embryos with an abnormal structure more effectively by adding a relevant and label-free, and therefore non-destructive, source of information.
[0134] According to another embodiment, micro-tissue is a micro-tissue produced for the purposes of bioproduction of medicine or bioproduction of food.
[0135] The invention is now illustrated by an example of implementation of the method according to the invention compared to an example of a prior art characterization method.
[0136] Examples
[0137] Example 1
[0138] In this example, the process relates to the analysis of a human micro-tissue contained in a micro-compartment, as described in example 1 of application WO2018 / 096277 (example 1: protocol for obtaining cellular micro-compartments from pluripotent induced human cells).
[0139] A microcompartment was analyzed using an intensity-measuring imaging technique, as described in (Bon P. et al., Quadriwave lateral shearing interferometry for quantitative phase microscopy of living cells, 2009, Optical Society of America). Intensity was obtained by demodulating low frequencies via Fourier processing of an interferogram obtained with the protocol shown schematically in Figure 4. The results are presented in Figure 2.
[0140] A microcompartment was analyzed according to a method of the invention. The operating procedure is described as follows: a halogen light is used to illuminate the sample in transmission; a microscope objective (20x, numerical aperture 0.5) mounted on an inverted microscope is used to form the image of the sample on a self-referential interface (a phase-sensitive detector, among other things). The imaging technique used is wavefront gradient imaging, and in particular the modified Hartmann method. The procedure is also schematically illustrated in Figure 4. Figure 4 shows the illumination system, the sample, the microscope, and the phase-sensitive detector. A zoomed view is shown to illustrate the modified Hartmann setup used to obtain Figures 1 and 2.
[0141] The results obtained are presented in Figure 1.
[0142] It is observed that the image obtained with the method according to the invention makes it possible to measure the local density of the sample and to uncorrelated it with the absorption by comparison with the image obtained by the prior art technique. In particular, the method according to the invention made it possible to measure:
[0143] -the total dimensions of each micro-tissue, which are 91 pm (for the largest) and 59 pm (for the smallest), calculated by measuring the diameter in pixels of each micro-tissue on image D. Knowing the total magnification of the imaging system g y and the physical size of a pixel is measured in Tpix, the dimension of a micro-tissue is then Dx Tpix / g y .
[0144] - The diameter of the light zone at the center of each micro-tissue by an analysis of the dimensions of the zone exhibiting homogeneous granularity and a lower phase shift (i.e., darker image) at the center of the micro-tissue, measured at 38pm for the largest micro-tissue and 25pm for the smallest.
[0145] - the dry mass of the object (the integral over the object of the density), which is 39 pg for the largest microtissue and 16 pg for the smallest, calculated as described in the publication (Aknoun S. et al., Living cell dry mass measurement using quantitative phase imaging with quadriwave lateral shearing interferometry: an accuracy and sensitivity discussion, J of Biomedical Optics, 2015). Briefly, this involves automatically delineating each microtissue by determining its edges, evaluating the background phase value using polynomial fit, subtracting it from the image, summing all the phase information for each microtissue, and converting this to mass using the following equation: m = 0.18 pg / µm 3 x J f Jfmi .crotissu phase ds - the cell count, which is 608 ± 176 cells for the largest microtissue and 244 ± 64 cells for the smallest. This value is obtained using two complementary approaches. Knowing the average cell size (5 µm) and the volume of the area containing cells in the microtissue (microtissue volume minus lumen volume), we can deduce a cell count (421 and 180 cells, respectively). Knowing the average stem cell mass (50 pg) and the total microtissue mass, we can deduce another cell count (784 and 312 cells, respectively).
[0146] Example 2
[0147] In this example, the process relates to the analysis of several human micro-tissues contained in microcompartments, as described in Example 1 of application WO2018 / 096277 (Example 1: Protocol for obtaining cellular microcompartments from human cells induced to pluripotency). Human pluripotent stem cells (Gibco Human Episomal IPSC) were encapsulated in an extracellular matrix surrounded by a porous alginate wall and cultured for 6 days in a supplemented growth medium (MTesrl).
[0148] The microtissues were analyzed according to the method of the invention. The operating procedure is described as follows: halogen light is used to transmittally illuminate the sample; a microscope objective (20x NA, numerical aperture 0.45) mounted on an inverted microscope is used to form the image of the sample on a self-referential interferometer (a detector sensitive, among other things, to phase). The imaging technique used is quantitative phase imaging by interferometry. The procedure is also schematically illustrated in Figure 4. The numerical aperture of the illumination is 0.13 (spatial coherence of the illumination), and the wavelength of the illumination is 550 ± 100 nm (spectral range of the illumination or temporal coherence of the illumination).
[0149] The results obtained are presented in Figures 5a, 5b and 5c. They allow us to characterize the texture and roundness of the microcompartments with micro-tissues which are acceptable (5a) and unacceptable (5b).
[0150] In Figure 5a, the micro-tissues are composed of stem cells forming a single cyst and meeting criteria of homogeneity of cell distribution and roundness allowing them to be classified in the category of acceptable micro-tissues.
[0151] In Figure 5b, the microtissues are composed of stem cells forming multiple cysts and / or exhibiting inhomogeneity in cell distribution and roundness, allowing them to be classified as unacceptable microtissues. It can be seen that the method according to the invention, through statistical analysis of roundness and texture homogeneity, allows for the characterization of acceptable and unacceptable microtissues, even dense ones.
[0152] Figure 5c, on the left, shows a micro-tissue obtained according to the method of Example 2, and on the right, shows the same micro-tissue acquired using multiphoton microscopy (the cell nuclei are labeled with 10 µg / mL Hoechst 33342 (Thermofisher)). Approximately half of the cells are visible in multiphoton microscopy compared to the invention. The total number of cells is approximately 500.
[0153] It is also observed that labeling the nuclei of micro-tissue cells allows us to correlate texture and roundness data with the number of cells.
[0154] Example 3
[0155] In this example, the process relates to the analysis of a human micro-tissue contained in a micro-compartment, as described in example 1 of application WO2018 / 096277 (example 1: protocol for obtaining cellular micro-compartments from human cells induced to pluripotency) compared to the same micro-compartment without micro-tissue.
[0156] Microcompartments with and without microtissues were analyzed according to the method of the invention. The operating protocol is described as follows: halogen light is used to transmit light onto the sample; a microscope objective (20x NA, numerical aperture 0.45) mounted on an inverted microscope is used to image the sample on a self-referential interferometer (a detector sensitive, among other things, to phase). The imaging technique used is quantitative phase imaging by interferometry. The numerical aperture of the illumination is 0.13 (spatial coherence of the illumination), and the wavelength of the illumination is 550 ± 100 nm (spectral range of the illumination or temporal coherence of the illumination).
[0157] The results obtained are presented in Figure 6 and Figure 7.
[0158] Figure 6 clearly shows a quadratic evolution of cell growth and a dispersion at a given date to determine population growth and sort mature micro-tissues.
[0159] Figure 7 shows that phase imaging allows us to characterize the density of cells present in a micro-tissue.
Claims
Demands
1. Method for in vitro characterization of a biological microtissue of eukaryote whose smallest dimension is greater than or equal to 20pm, in imaging by a phase measurement technique without reference beam.
2. A method for the in vitro characterization of a microtissue according to claim 1, said method comprising at least the study of cell organization in the microtissue. [Claim B] A method for the in vitro characterization of a microtissue according to the preceding claim, characterized in that the study of cell organization in the microtissue comprises the study of the microtissue topology and / or the relative positioning of the cells in the microtissue.
4. A method according to any one of the preceding claims, characterized in that the contrast of the speckling generated by the micro-tissue is less than 75% of the maximum unit contrast.
5. A method according to any one of the preceding claims, characterized in that the spectral range of the illumination is a minimum of 5 nm in the visible and a maximum of 600 nm.
6. A method according to any one of the preceding claims, characterized in that the numerical aperture of illumination is at least 5% and at most 90% of the numerical aperture of the imaging system.
7. Method for in vitro characterization of a micro-tissue according to claim 1, the micro-tissue being a human, animal or plant micro-tissue.
8. Method for in vitro characterization of a micro-tissue according to any one of the preceding claims, characterized in that the largest dimension is less than or equal to 10 mm.
9. A method for the in vitro characterization of a microtissue according to any one of the preceding claims, characterized in that the measurement technique for the phase without a reference beam is chosen from: - wavefront analysis - dynamic modulation of the phase or intensity of light in the pupil of the illumination or imaging system - Multiple light intensity imaging with modification of the focus plane.
10. A method for characterizing a microtissue according to any one of the preceding claims, characterized in that the beamless phase measurement technique of reference is wavefront analysis and in that it is performed using wavefront gradient imaging.
11. A method for characterizing a micro-tissue according to the preceding claim, characterized in that wavefront gradient imaging is selected from the Shack-Hartmann method, modified or unmodified Hartmann, pupil partitioning and speckle field imaging.
12. A method for characterizing a micro-tissue according to any one of claims 1 to 8, characterized in that the phase measurement technique without a reference beam is the dynamic modulation of the phase or light intensity in the pupil of the illumination or imaging system and in that it is carried out using the ptychography technique or the selective phase modulation of certain frequencies in the pupil.
13. A method for characterizing a micro-tissue according to any one of claims 1 to 8, characterized in that the phase measurement technique without a reference beam is multiple light intensity imaging with modification of the focus plane and in that it is carried out using simultaneous or sequential multiplane imaging.
14. A method for characterizing a micro-tissue according to any one of the preceding claims, characterized in that it comprises measuring the phase and optionally the luminous intensity of the light that has passed through the micro-tissue.
15. A method for characterizing a micro-tissue according to any one of the preceding claims, characterized in that it comprises the measurement: - of the micro-tissue density, based on phase measurement, and - possibly from the local absorption of the micro-tissue, from the measurement of the phase and the measurement of the light intensity of the light that has passed through the micro-tissue.
16. A method for characterizing a micro-tissue according to any one of the preceding claims, characterized in that it comprises the measurement of at least one of the following parameters: - dimensions of the micro-tissue, - dimensions of at least one of the cells in the micro-tissue, - number of cells in the micro-tissue, - overall and local mass of the micro-tissue, - overall and local density of micro-tissue, - mass distribution in micro-tissue, - micro-tissue topology - relative positioning of cells in the micro-tissue, - viability of micro-tissue cells, - texture of the micro-fabric.
17. A method for characterizing a micro-tissue according to any one of the preceding claims, characterized in that the micro-tissue is encapsulated in a microcompartment comprising an outer hydrogel layer.
18. A method for characterizing a micro-tissue according to any one of the preceding claims, characterized in that the micro-tissue is in the form of an ovoid, a tuboid, a spheroid or a sphere, or of monolayers partially folded upon themselves (2, 5D).
19. A method for characterizing a micro-tissue according to any one of the preceding claims, characterized in that the micro-tissue is surrounded at least partially by an extracellular matrix.
20. A method for characterizing a micro-tissue according to any one of the preceding claims, characterized in that the micro-tissue is a human or animal biological micro-tissue intended for grafting into humans or animals.
21. A method for characterizing a microtissue according to any one of the preceding claims, characterized in that the microtissue is a human or animal biological microtissue selected from epithelial, connective, muscular, or nervous microtissues.
22. A method for characterizing a microtissue according to any one of the preceding claims, characterized in that the microtissue comprises differentiated cardiac cells, retinal cells, neural cells, liver cells, chondrocytes, keratinocytes, lymphoid cells, hematopoietic stem cells, mesenchymal stem cells, or pluripotent cells in the form of an epiblast.
23. Method for in vitro characterization of a micro-tissue according to any one of the preceding claims, characterized in that the micro-tissue is a micro-tissue produced for the purpose of bioproduction of medicine or food.
24. A method for characterizing a micro-tissue according to any one of claims 1 to 14, characterized in that the micro-tissue is a plant biological micro-tissue selected from meristems, parenchyma, conducting tissues, supporting tissues, covering or protective tissues, secretory tissues and nourishing tissues.
25. A method for characterizing a microtissue according to any one of the preceding claims, characterized in that it is carried out online on the contents of a bioreactor.
26. A method for characterizing a microtissue according to any one of claims 1 to 24, characterized in that it is carried out: i) in flow cells, or ii) by spot sampling outside the bioreactor, or iii) for sorting microtissues online or offline.
27. Use of a method according to any one of the preceding claims, for: - to control the quality of a microtissue, and / or - to measure the increase in the biomass of a microtissue during its culture and / or amplification, and / or - to monitor the differentiation and / or organization of a micro-tissue during its maturation, and / or - determine the phenotype of micro-tissue cells, and / or - confirm the absence of undifferentiated cells in the micro-tissue, and / or -determine the viability of the micro-tissue cells.
28. Use of a method according to any one of claims 1 to 25, for screening embryos obtained by in vitro fertilization, the embryo being the micro-tissue.