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David Pellman

Harvard University · US
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Area of research
Cell Biology · Molecular Biology
Research interest
Research interests include Microtubule and mitosis dynamics, Fungal and yeast genetics research, DNA Repair Mechanisms, and Genomic variations and chromosomal abnormalities.
h-index
84
citations
28,680
works
204
NIH funding
primary concept
Biology
email

Recent publications

A breakage–replication/fusion process explains complex rearrangements and segmental DNA amplification
Nature Genetics 2026cited by 4position: lastdoi
ERα-associated translocations underlie oncogene amplifications in breast cancer
Nature 2023cited by 117position: middledoi
Heritable transcriptional defects from aberrations of nuclear architecture
Nature 2023cited by 84position: lastdoi
A tubule-sheet continuum model for the mechanism of nuclear envelope assembly
Developmental Cell 2023cited by 19position: lastdoi
Author Correction: Comprehensive analysis of chromothripsis in 2,658 human cancers using whole-genome sequencing
Nature Genetics 2023cited by 5position: middledoi
Abstract 6105: Unravelling the mechanistic basis of chromoplexy, a mutational process driving early cancer genome evolution
Cancer Research 2023cited by 2position: lastdoi
Breakage of cytoplasmic chromosomes by pathological DNA base excision repair
Nature 2022cited by 112position: lastdoi
Cancer Genomic Rearrangements and Copy Number Alterations from Errors in Cell Division
Annual Review of Cancer Biology 2022cited by 22position: lastdoi
Chromothripsis as an on-target consequence of CRISPR–Cas9 genome editing
Nature Genetics 2021cited by 553position: lastdoi
Whole chromosome loss and genomic instability in mouse embryos after CRISPR-Cas9 genome editing
Nature Communications 2021cited by 141position: lastdoi
Decoding complex patterns of oncogene amplification
Nature Genetics 2021cited by 6position: firstdoi
Comprehensive analysis of chromothripsis in 2,658 human cancers using whole-genome sequencing
Nature Genetics 2020cited by 765position: middledoi
Mechanisms generating cancer genome complexity from a single cell division error
Science 2020cited by 454position: lastdoi
The coordination of nuclear envelope assembly and chromosome segregation in metazoans
Nucleus 2020cited by 81position: lastdoi
Factors promoting nuclear envelope assembly independent of the canonical ESCRT pathway
The Journal of Cell Biology 2020cited by 37position: lastdoi
The Ubiquitin Ligase TRAIP: Double-Edged Sword at the Replisome
Trends in Cell Biology 2020cited by 33position: middledoi
Publisher Correction: Comprehensive analysis of chromothripsis in 2,658 human cancers using whole-genome sequencing
Nature Genetics 2020cited by 13position: middledoi
Mitotic CDK Promotes Replisome Disassembly, Fork Breakage, and Complex DNA Rearrangements
Molecular Cell 2019cited by 154position: middledoi
Nuclear envelope assembly defects link mitotic errors to chromothripsis
Nature 2018cited by 325position: lastdoi
Cells Lacking the <i>RB1</i> Tumor Suppressor Gene Are Hyperdependent on Aurora B Kinase for Survival
Cancer Discovery 2018cited by 176position: middledoi
Trisomy of a Down Syndrome Critical Region Globally Amplifies Transcription via HMGN1 Overexpression
Cell Reports 2018cited by 66position: middledoi
Human nuclear RNAi-defective 2 (NRDE2) is an essential RNA splicing factor
RNA 2018cited by 19position: middledoi
A Tubulin Binding Switch Underlies Kip3/Kinesin-8 Depolymerase Activity
Developmental Cell 2017cited by 81position: lastdoi
Cell Biology: When Your Own Chromosomes Act like Foreign DNA
Current Biology 2017cited by 16position: lastdoi
Genome jail-break triggers lockdown
Nature 2017cited by 13position: lastdoi
The EMT regulator ZEB2 is a novel dependency of human and murine acute myeloid leukemia
Blood 2016cited by 81position: lastdoi
Chromothripsis from DNA damage in micronuclei
Nature 2015cited by 1,187position: lastdoi
Polyploidy can drive rapid adaptation in yeast
Nature 2015cited by 512position: lastdoi
Chromothripsis: A New Mechanism for Rapid Karyotype Evolution
Annual Review of Genetics 2015cited by 212position: lastdoi
Direct Microtubule-Binding by Myosin-10 Orients Centrosomes toward Retraction Fibers and Subcortical Actin Clouds
Developmental Cell 2015cited by 111position: lastdoi

Grants

No grants ingested yet.

Frequent collaborators

Cheng‐Zhong Zhang · Broad Institute8 papers (2015–2023)Ema Stokasimov · Harvard University5 papers (2012–2023)Neil T. Umbreit · Boston Biomedical (United States)4 papers (2017–2020)Logan J. Blaine · Harvard University3 papers (2020–2021)Xiaolei Su · Yale University3 papers (2012–2017)Alexander Spektor · Harvard University3 papers (2015–2020)Neil J. Ganem · Boston University3 papers (2012–2014) · 3 papers (2021–2023)Mijung Kwon · Animal and Plant Quarantine Agency3 papers (2014–2018)Shiwei Liu · Shanghai Medical College of Fudan University3 papers (2020–2023)Mitchell L. Leibowitz · Broad Institute3 papers (2015–2021)Manuel Théry · Gene Therapy Laboratory3 papers (2013–2014)Keiko Kono · Okinawa Institute of Science and Technology Graduate University2 papers (2012–2012)Shiwei Liu · Institute of Microelectronics2 papers (2015–2018)Barbara A. Weir · Weatherford College2 papers (2012–2016)Matthew Meyerson · Harvard University2 papers (2012–2015)Gregory J. Brunette · UPMC Hillman Cancer Center2 papers (2023–2023)Hugo Arellano-Santoyo · Broad Institute2 papers (2013–2017) · 2 papers (2020–2023)Susana A. Godinho · Queen Mary University of London2 papers (2014–2014)
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