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Michael A. Teitell

California NanoSystems Institute · US
Area of research
Molecular Biology · Biomedical Engineering
Research interest
Research interests include Microfluidic and Bio-sensing Technologies, Mitochondrial Function and Pathology, Pluripotent Stem Cells Research, and 3D Printing in Biomedical Research.
h-index
71
citations
16,975
works
297
NIH funding
primary concept
email

Recent publications

Recommendations for mitochondria transfer and transplantation nomenclature and characterization
Nature Metabolism 2025cited by 110position: middledoi
Trafficking of mitochondrial double-stranded RNA from mitochondria to the cytosol
Life Science Alliance 2024cited by 15position: middledoi
Drug screening at single-organoid resolution via bioprinting and interferometry
Nature Communications 2023cited by 128position: middledoi
Nanopore sequencing identifies a higher frequency and expanded spectrum of mitochondrial <scp>DNA</scp> deletion mutations in human aging
Aging Cell 2023cited by 29position: middledoi
Consent document translation expense hinders inclusive clinical trial enrolment
Nature 2023cited by 28position: middledoi
Quantitative Phase Imaging: Recent Advances and Expanding Potential in Biomedicine
ACS Nano 2022cited by 292position: middledoi
Stable transplantation of human mitochondrial DNA by high-throughput, pressurized isolated mitochondrial delivery
eLife 2021cited by 54position: lastdoi
Mitochondrial DNA Dynamics in Reprogramming to Pluripotency
Trends in Cell Biology 2021cited by 42position: lastdoi
Nutrients in the fate of pluripotent stem cells
Cell Metabolism 2021cited by 40position: lastdoi
Type V Collagen in Scar Tissue Regulates the Size of Scar after Heart Injury
Cell 2020cited by 210position: middledoi
Metabolic reprogramming and epigenetic changes of vital organs in SARS-CoV-2–induced systemic toxicity
JCI Insight 2020cited by 87position: middledoi
Pressure-Driven Mitochondrial Transfer Pipeline Generates Mammalian Cells of Desired Genetic Combinations and Fates
Cell Reports 2020cited by 48position: lastdoi
Cell viscoelasticity is linked to fluctuations in cell biomass distributions
Scientific Reports 2020cited by 33position: lastdoi
Photothermal Intracellular Delivery Using Gold Nanodisk Arrays
ACS Materials Letters 2020cited by 23position: middledoi
Identifying fates of cancer cells exposed to mitotic inhibitors by quantitative phase imaging
The Analyst 2019cited by 20position: lastdoi
Mitochondrial double-stranded RNA triggers antiviral signalling in humans
Nature 2018cited by 616position: middledoi
Initial B Cell Activation Induces Metabolic Reprogramming and Mitochondrial Remodeling
iScience 2018cited by 301position: lastdoi
Metabolism in Pluripotent Stem Cells and Early Mammalian Development
Cell Metabolism 2018cited by 180position: lastdoi
Metabolism in pluripotency: Both driver and passenger?
Journal of Biological Chemistry 2018cited by 77position: lastdoi
High-Speed Live-Cell Interferometry: A New Method for Quantifying Tumor Drug Resistance and Heterogeneity
Analytical Chemistry 2018cited by 40position: middledoi
Soft lithography fabrication of index-matched microfluidic devices for reducing artifacts in fluorescence and quantitative phase imaging
Microfluidics and Nanofluidics 2017cited by 28position: middledoi
LIN28 Regulates Stem Cell Metabolism and Conversion to Primed Pluripotency
Cell stem cell 2016cited by 353position: middledoi
α-Ketoglutarate Accelerates the Initial Differentiation of Primed Human Pluripotent Stem Cells
Cell Metabolism 2016cited by 280position: lastdoi
Mitochondrial Transfer by Photothermal Nanoblade Restores Metabolite Profile in Mammalian Cells
Cell Metabolism 2016cited by 123position: lastdoi
Modifying the Mitochondrial Genome
Cell Metabolism 2016cited by 114position: lastdoi
2-Hydroxyglutarate Inhibits ATP Synthase and mTOR Signaling
Cell Metabolism 2015cited by 240position: middledoi
Massively parallel delivery of large cargo into mammalian cells with light pulses
Nature Methods 2015cited by 174position: middledoi
The metabolite α-ketoglutarate extends lifespan by inhibiting ATP synthase and TOR
Nature 2014cited by 611position: middledoi
Wnt signaling directs a metabolic program of glycolysis and angiogenesis in colon cancer
The EMBO Journal 2014cited by 463position: middledoi
Techniques to Monitor Glycolysis
Methods in enzymology on CD-ROM/Methods in enzymology 2014cited by 275position: lastdoi

Grants

No grants ingested yet.

Frequent collaborators

Carla M. Koehler · University of California, Los Angeles8 papers (2012–2024)Pei‐Yu Chiou · University of California, Los Angeles8 papers (2012–2021)Thomas A. Zangle · University of Utah8 papers (2013–2022)Ting‐Hsiang Wu · Westwood College7 papers (2012–2021)Tara TeSlaa · University of California, Los Angeles6 papers (2012–2016)Alexander N. Patananan · University of California, Los Angeles5 papers (2016–2021)Jason Hong · University of California, Los Angeles5 papers (2012–2016)Thomas G. Graeber · Nanosys (United States)5 papers (2012–2020)Irena J. Roy · University of California, Los Angeles3 papers (2018–2021)Vivian Lu · Cornell University3 papers (2018–2021)Dian Huang · Huazhong Agricultural University3 papers (2014–2019)Thang L. Nguyen · University of California, Los Angeles3 papers (2020–2023)Jason Reed · Virginia Commonwealth University3 papers (2018–2022)Daniel Braas · University of California, Los Angeles3 papers (2015–2016)Robert Damoiseaux · APLA Health2 papers (2013–2014)Alexander J. Sercel · National Laboratory for Education Transformation2 papers (2021–2021)Esther Nuebel · University of Utah2 papers (2012–2012)Jin Zhang · Chongqing Cancer Hospital2 papers (2014–2018)Dona R. Wisidagama · University of Utah2 papers (2012–2014)Tianxing Man · Jilin University2 papers (2020–2021)