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1.
Mol Cell ; 82(2): 241-247, 2022 01 20.
Article in English | MEDLINE | ID: mdl-35063094

ABSTRACT

Quantitative optical microscopy-an emerging, transformative approach to single-cell biology-has seen dramatic methodological advancements over the past few years. However, its impact has been hampered by challenges in the areas of data generation, management, and analysis. Here we outline these technical and cultural challenges and provide our perspective on the trajectory of this field, ushering in a new era of quantitative, data-driven microscopy. We also contrast it to the three decades of enormous advances in the field of genomics that have significantly enhanced the reproducibility and wider adoption of a plethora of genomic approaches.


Subject(s)
Genomics/trends , Microscopy/trends , Optical Imaging/trends , Single-Cell Analysis/trends , Animals , Diffusion of Innovation , Genomics/history , High-Throughput Screening Assays/trends , History, 20th Century , History, 21st Century , Humans , Microscopy/history , Optical Imaging/history , Reproducibility of Results , Research Design/trends , Single-Cell Analysis/history
2.
AAPS J ; 23(5): 98, 2021 08 13.
Article in English | MEDLINE | ID: mdl-34389904

ABSTRACT

This review provides a brief history of the advances of cellular analysis tools focusing on instrumentation, detection probes, and data analysis tools. The interplay of technological advancement and a deeper understanding of cellular biology are emphasized. The relevance of this topic to drug development is that the evaluation of cellular biomarkers has become a critical component of the development strategy for novel immune therapies, cell therapies, gene therapies, antiviral therapies, and vaccines. Moreover, recent technological advances in single-cell analysis are providing more robust cellular measurements and thus accelerating the advancement of novel therapies.Graphical abstract.


Subject(s)
Drug Development/trends , Flow Cytometry/trends , Single-Cell Analysis/trends , Drug Development/history , Drug Development/methods , Flow Cytometry/history , Flow Cytometry/methods , History, 16th Century , History, 17th Century , History, 18th Century , History, 19th Century , History, 20th Century , History, 21st Century , Humans , Microscopy/history , Microscopy/methods , Microscopy/trends , Single-Cell Analysis/history , Single-Cell Analysis/methods
4.
Curr Opin Endocrinol Diabetes Obes ; 27(4): 231-239, 2020 08.
Article in English | MEDLINE | ID: mdl-32618635

ABSTRACT

PURPOSE OF REVIEW: New single-cell tec. hnologies developed over the past decade have considerably reshaped the biomedical research landscape, and more recently have found their way into studies probing the pathogenesis of type 1 diabetes (T1D). In this context, the emergence of mass cytometry in 2009 revolutionized immunological research in two fundamental ways that also affect the T1D world: first, its ready embrace by the community and rapid dissemination across academic and private science centers alike established a new standard of analytical complexity for the high-dimensional proteomic stratification of single-cell populations; and second, the somewhat unexpected arrival of mass cytometry awoke the flow cytometry field from its seeming sleeping beauty stupor and precipitated substantial technological advances that by now approach a degree of analytical dimensionality comparable to mass cytometry. RECENT FINDINGS: Here, we summarize in detail how mass cytometry has thus far been harnessed for the pursuit of discovery studies in T1D science; we provide a succinct overview of other single-cell analysis platforms that already have been or soon will be integrated into various T1D investigations; and we briefly consider how effective adoption of these technologies requires an adjusted model for expense allocation, prioritization of experimental questions, division of labor, and recognition of scientific contributions. SUMMARY: The introduction of contemporary single-cell technologies in general, and of mass cytometry, in particular, provides important new opportunities for current and future T1D research; the necessary reconfiguration of research strategies to accommodate implementation of these technologies, however, may both broaden research endeavors by fostering genuine team science, and constrain their actual practice because of the need for considerable investments into infrastructure and technical expertise.


Subject(s)
Biomedical Research/trends , Data Science/trends , Diabetes Mellitus, Type 1/etiology , Proteomics/methods , Single-Cell Analysis/trends , Animals , Biomedical Research/history , Biomedical Research/methods , Data Science/history , Data Science/methods , Diabetes Mellitus, Type 1/pathology , Flow Cytometry/history , Flow Cytometry/methods , Flow Cytometry/trends , History, 21st Century , Humans , Mass Spectrometry/history , Mass Spectrometry/methods , Mass Spectrometry/trends , Proteomics/history , Proteomics/trends , Single-Cell Analysis/history , Single-Cell Analysis/methods
5.
Adv Biosyst ; 4(8): e2000019, 2020 08.
Article in English | MEDLINE | ID: mdl-32483933

ABSTRACT

In this review, a brief history of this unrivaled technology, flow cytometry, is provided, highlighting its past and present advances, with particular focus on "flow cell" technologies. Flow cytometry has truly revolutionized high-throughput single cell analysis, which has tremendous implications, from laboratory to the clinic. This technology embodies what is truly referred to as cross fertile research, merging the physical with the life sciences. This review introduces the recent notable advancements in flow cell technology. This advancement sees the complete removal of liquid sheath flow, which has advanced the technology with the possibility of both the reduction in its foot print, while also simplifying the flow cells explored in cytometry. Interestingly, the novel sheathless flow cell technology demonstrated herein has the flexibility for handling both heterogeneous cell populations and whole organisms, thus demonstrating a versatile flow cell technology for both flow cytometry and fluorescent-activated cell sorting.


Subject(s)
Cell Separation/methods , Flow Cytometry/methods , Single-Cell Analysis/methods , Cell Separation/history , Cell Separation/instrumentation , Flow Cytometry/history , Flow Cytometry/instrumentation , Fluorescent Dyes/chemistry , History, 20th Century , History, 21st Century , Humans , Hydrodynamics , Lasers , Optical Fibers , Rheology/methods , Single-Cell Analysis/history , Single-Cell Analysis/instrumentation
6.
Clin Chem ; 65(8): 972-985, 2019 08.
Article in English | MEDLINE | ID: mdl-30872376

ABSTRACT

BACKGROUND: Single-cell genomics is an approach to investigate cell heterogeneity and to identify new molecular features correlated with clinical outcomes. This approach allows identification of the complexity of cell diversity in a sample without the loss of information that occurs when multicellular or bulk tissue samples are analyzed. CONTENT: The first single-cell RNA-sequencing study was published in 2009, and since then many more studies and single-cell sequencing methods have been published. These studies have had a major impact on several fields, including microbiology, neurobiology, cancer, and developmental biology. Recently, improvements in reliability and the development of commercial single-cell isolation platforms are opening the potential of this technology to the clinical laboratory. SUMMARY: In this review we provide an overview of the current state of single-cell genomics. We describe opportunities in clinical research and medical applications.


Subject(s)
Genomics/methods , Sequence Analysis, RNA/methods , Single-Cell Analysis/methods , Cell Separation/methods , Epigenomics , Gene Amplification , History, 20th Century , History, 21st Century , Humans , Immunity/genetics , Microbiota/genetics , Neoplasms/genetics , Reproducibility of Results , Single-Cell Analysis/history , Single-Cell Analysis/trends , Transcriptome/genetics
7.
Nat Protoc ; 13(4): 599-604, 2018 04.
Article in English | MEDLINE | ID: mdl-29494575

ABSTRACT

Measurement of the transcriptomes of single cells has been feasible for only a few years, but it has become an extremely popular assay. While many types of analysis can be carried out and various questions can be answered by single-cell RNA-seq, a central focus is the ability to survey the diversity of cell types in a sample. Unbiased and reproducible cataloging of gene expression patterns in distinct cell types requires large numbers of cells. Technological developments and protocol improvements have fueled consistent and exponential increases in the number of cells that can be studied in single-cell RNA-seq analyses. In this Perspective, we highlight the key technological developments that have enabled this growth in the data obtained from single-cell RNA-seq experiments.


Subject(s)
Gene Expression Profiling/methods , Sequence Analysis, RNA/methods , Single-Cell Analysis/methods , Gene Expression Profiling/history , Gene Expression Profiling/trends , History, 21st Century , Sequence Analysis, RNA/history , Sequence Analysis, RNA/trends , Single-Cell Analysis/history , Single-Cell Analysis/trends
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