ASTM F2944-2012 Standard Test Method for Automated Colony Forming Unit (CFU) AssaysImage Acquisition and Analysis Method for Enumerating and Characterizing Cells and Colonies in Cu.pdf
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1、Designation: F2944 12Standard Test Method forAutomated Colony Forming Unit (CFU) AssaysImageAcquisition and Analysis Method for Enumerating andCharacterizing Cells and Colonies in Culture1This standard is issued under the fixed designation F2944; the number immediately following the designation indi
2、cates the year oforiginal adoption or, in the case of revision, the year of last revision. A number in parentheses indicates the year of last reapproval. Asuperscript epsilon () indicates an editorial change since the last revision or reapproval.1. Scope1.1 This test method, provided its limitations
3、 are under-stood, describes a procedure for quantitative measurement ofthe number and biological characteristics of colonies derivedfrom a stem cell or progenitor population using image analysis.1.2 This test method is applied in an in vitro laboratorysetting.1.3 This method utilizes: (a) standardiz
4、ed protocols forimage capture of cells and colonies derived from in vitroprocessing of a defined population of starting cells in a definedfield of view (FOV), and (b) standardized protocols for imageprocessing and analysis.1.4 The relevant FOV may be two-dimensional or three-dimensional, depending o
5、n the CFU assay system beinginterrogated.1.5 The primary unit to be used in the outcome of analysisis the number of colonies present in the FOV. In addition, thecharacteristics and sub-classification of individual colonies andcells within the FOV may also be evaluated, based on extantmorphological f
6、eatures, distributional properties, or propertieselicited using secondary markers (for example, staining orlabeling methods).1.6 Imaging methods require that images of the relevantFOV be captured at sufficient resolution to enable detectionand characterization of individual cells and over a FOV that
7、 issufficient to detect, discriminate between, and characterizecolonies as complete objects for assessment.1.7 Image processing procedures applicable to two- andthree-dimensional data sets are used to identify cells orcolonies as discreet objects within the FOV. Imaging methodsmay be optimized for m
8、ultiple cell types and cell features usinganalytical tools for segmentation and clustering to definegroups of cells related to each other by proximity or morphol-ogy in a manner that is indicative of a shared lineagerelationship (that is, clonal expansion of a single founding stemcell or progenitor)
9、.1.8 The characteristics of individual colony objects (cellsper colony, cell density, cell size, cell distribution, cell hetero-geneity, cell genotype or phenotype, and the pattern, distribu-tion and intensity of expression of secondary markers) areinformative of differences in underlying biological
10、 propertiesof the clonal progeny.1.9 Under appropriately controlled experimental conditions,differences between colonies can be informative of the biologi-cal properties and underlying heterogeneity of colony foundingcells (CFUs) within a starting population.1.10 Cell and colony area/volume, number,
11、 and so forthmay be expressed as a function of cell culture area (squaremillimetres), or initial cell suspension volume (millilitres).1.11 Sequential imaging of the FOV using two or moreoptical methods may be valuable in accumulating quantitativeinformation regarding individual cells or colony objec
12、ts in thesample. In addition, repeated imaging of the same sample willbe necessary in the setting of process tracking and validation.Therefore, this test method requires a means of reproducibleidentification of the location of cells and colonies (centroids)within the FOV area/volume using a defined
13、coordinate sys-tem.1.12 To achieve a sufficiently large field-of-view (FOV),images of sufficient resolution may be captured as multipleimage fields/tiles at high magnification and then combinedtogether to form a mosaic representing the entire cell culturearea.1.13 Cells and tissues commonly used in
14、tissue engineering,regenerative medicine, and cellular therapy are routinely as-sayed and analyzed to define the number, prevalence, biologi-cal features, and biological potential of the original stem celland progenitor population(s).1.13.1 Common applicable cell types and cell sourcesinclude, but a
15、re not limited to: mammalian stem and progenitorcells; adult-derived cells (for example, blood, bone marrow,skin, fat, muscle, mucosa) cells, fetal-derived cells (for ex-ample, cord blood, placental/cord, amniotic fluid); embryonicstem cells (ESC) (that is, derived from inner cell mass ofblastocysts
16、); induced pluripotency cells (iPS) (for example,reprogrammed adult cells); culture expanded cells; and termi-nally differentiated cells of a specific type of tissue.1This test method is under the jurisdiction of ASTM Committee F04 on Medicaland Surgical Materials and Devices and is the direct respo
17、nsibility of SubcommitteeF04.43 on Cells and Tissue Engineered Constructs for TEMPs.Current edition approved March 1, 2012. Published April 2012. DOI: 10.1520/F294412.1Copyright ASTM International, 100 Barr Harbor Drive, PO Box C700, West Conshohocken, PA 19428-2959, United States.1.13.2 Common appl
18、icable examples of mature differenti-ated phenotypes which are relevant to detection of differentia-tion within and among clonal colonies include: hematopoieticphenotypes (erythrocytes, lymphocytes, neutrophiles, eosino-philes, basophiles, monocytes, macrophages, and so forth),mesenchymal phenotypes
19、 (oteoblasts, chondrocytes, adipo-cytes, and so forth), and other tissues (hepatocytes, neurons,endothelial cells, keratinocyte, pancreatic islets, and so forth).1.14 The number of stem cells and progenitor cells invarious tissues can be assayed in vitro by liberating the cellsfrom the tissues using
20、 methods that preserve the viability andbiological potential of the underlying stem cell and/or progeni-tor population, and placing the tissue-derived cells in an invitro environment that results in efficient activation and prolif-eration of stem and progenitor cells as clonal colonies. The truenumb
21、er of stem cells and progenitors (true colony formingunits (tCFU) can thereby be estimated on the basis of thenumber of colony-forming units observed (observed colonyforming units (oCFU) to have formed (1-3)2(Fig. A1.1). Theprevalence of stem cells and/or progenitors can be estimated onthe basis of
22、the number of observed colony-forming units(oCFU) detected, divided by the number of total cells assayed.1.15 The automated image acquisition and analysis ap-proach (described herein) to cell and colony enumeration hasbeen validated and found to provide superior accuracy andprecision when compared t
23、o the current “gold standard” ofmanual observer defined visual cell and colony counting undera brightfield or fluorescent microscope with or without ahemocytomer (4), reducing both intra- and inter-observervariation. Several groups have attempted to automate thisand/or similar processes in the past
24、(5, 6). Recent reportsfurther demonstrate the capability of extracting qualitative andquantitative data for colonies of various cell types at thecellular and even nuclear level (4, 7).1.16 Advances in software and hardware now broadlyenable systematic automated analytical approaches. Thisevolving te
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