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Linderman Library Rotunda stained glass dome
Damian Dudka standing in front of a window smiling

Damian Dudka

Assistant Professor

610.758.5896
dad526@lehigh.edu
Education:

Postdoctoral Researcher, University of Pennsylvania, USA

PhD degree, University of Geneva, Switzerland

MSc and BSc degrees, University of Warsaw, Poland

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Additional Interests

  • Evolutionary Cell Biology
  • Genetics
  • Developmental Biology

Research Statement

Faithful chromosome segregation is crucial for fertility, development, and tissue homeostasis. Despite such highly conserved roles, genomic analyses suggest that the chromosome segregation machinery evolves extremely rapidly. This is a fascinating conundrum because chromosomes must segregate accurately to ensure organismal viability and reproduction. Solving this puzzle requires experimental systems that test hypotheses emerging from genomic analyses. In the Dudka Lab, we are building such systems by combining molecular evolution, gene editing, experimental evolution, confocal microscopy, and mouse models.

Functional Constraints of Centromeric DNA Evolution

Highly repetitive centromeric DNA satellites occupy 6.2% of the human genome and can differ 37-fold between individuals. Despite mounting evidence that this variation is deleterious (linked to Down syndrome and poor cancer prognosis), the functional constraints that result in this divergence are very poorly understood. We discovered that two recently emerged mouse centromeric satellites have distinct DNA shapes due to sequence divergence. Using hybrid mouse oocytes, we showed that architectural proteins from the HMGA family recognize the differences in those DNA shapes and then tightly package one of those centromeric satellites but not the other. Satellite packaging failure is catastrophic and disrupts chromosome segregation. Therefore, we proposed a model that can explain why closely related species show striking differences in satellite sequence and copy number. Under our model, differences in DNA shape-recognizing architectural proteins across species contribute to the extraordinary satellite divergence (Dudka et al., Nature 2025; Dudka et al., in revision). We use mammalian tissue culture cells as a model of satellite expansion, leveraging experimental evolution assays and digital droplet PCR to understand the role of architectural proteins and DNA packaging in satellite divergence.

Functional Impacts of Adaptive Protein Evolution

Our molecular evolution analyses reveal that a whopping 30% (out of 100) of centromeric proteins show signatures of adaptive evolution in rodents and primates. These adaptations occur in proteins with diverse functions: centromere assembly, microtubule attachment modulation, and stabilization of correct attachments (Dudka et al., Journal of Cell Biology 2023). Our work on a critical centromeric protein that creates microtubule attachments at centromeres, CENP-T, suggests that adaptive evolution modulates centromere protein function and promotes robust female gametogenesis (Dudka et al., Current Biology 2025). We can discover how these adaptations maintain faithful segregation by creating "mal-adapted" alleles using gene editing to swap adaptively evolving regions between closely related rodent and primate species, creating evolutionary mismatches between the protein and the centromere. We are now systematically testing how adaptations in functionally distinct centromeric proteins regulate chromosome segregation and female fertility using cell lines and mouse models.

Health Implications of Mutations in Adaptive Sites

Chromosome mis-segregation underlies infertility, congenital diseases, and cancer. The vast majority of missense mutations in centromeric proteins are variants of uncertain significance (VUS). Given that many of these mutations occur in adaptively evolving sites, we hypothesize that molecular evolution analyses can reveal new disease-associated mutations in patients,
especially those suffering from infertility. We aim to identify new disease-associated mutations in centromeric proteins by intersecting molecular evolution analyses with known human mutations. We use gene editing in human cells and confocal microscopy to test the impact of these mutations on chromosome segregation.

Biography

Damian is an evolutionary cell biologist interested in unwinding the long-standing conundrum of how cells perform the highly conserved process of chromosome segregation while relying on an extremely rapidly evolving chromosome segregation machinery. His research program combines computational molecular evolution analyses, gene editing, advanced fluorescence microscopy, and mouse models. Dudka lab opened at Lehigh University in 2026. Before that, Damian was a postdoc with Michael Lampson at the University of Pennsylvania, working on female meiosis and centromere drive. He earned his PhD in biomedical sciences with Patrick Meraldi at the University of Geneva (Switzerland), studying mitotic spindle and centrosome function, and his BS and MS in biotechnology at the University of Warsaw (Poland), where he worked on stem cell differentiation with Maria-Anna Ciemerych Litwinienko. Along the way, he trained as an MBL Scholar at Harvard, an EMBO Short-Term Scholar at Warwick (UK), an Erasmus Scholar in Montpellier (France), and a visiting scholar in Rennes (France). Damian’s work has been supported by an SNSF Early Postdoctoral Fellowship, a short-term Boehringer Ingelheim Fonds fellowship, and an EMBO Short-Term Fellowship. He was also recognized with the ASCB Porter Prize for Research Excellence for his postdoctoral work. Damian is deeply committed to mentoring the next generation of scientists, and his previous mentees have gone on to PhD programs at MIT, Cornell, and Thomas Jefferson University.

Publications

Dudka D, Beeravolu K, Lampson MA. “Reciprocal constraint couples architectural protein
abundance and pericentromeric satellite expansion”.  bioRxiv. https://doi.org/10.64898/2026.05.15.725447 (in revision)     2026

Dudka D, Nguyen A, Boese K, Marescal O, Akins RB, Black BE, Cheeseman I, Lampson
MA. “Adaptive evolution of CENP-T Modulates Centromere Binding”. Current Biology. https://doi.org/10.1016/j.cub.2025.01.017     2025

Dudka D, Dawicki-McKenna JM, Sun X, Beeravolu K, Akera T, Lampson MA, Black BE.  “Satellite DNA shapes dictate pericentromere packaging in female meiosis”. Nature. https://doi.org/10.1038/s41586-024-08374-0      2023

Dudka D, Akins RB, Lampson MA. “FREEDA: An automated computational pipeline guides experimental testing of protein innovation”. Journal of Cell Biology. https://doi.org/10.1083/jcb.202212084     2023

El Dika M, Dudka D, Kloc M, Kubiak JZ. “CDC6 as a Key Inhibitory Regulator of CDK1 Activation Dynamics and the Timing of Mitotic Entry and Progression”. Biology (Basel).  https://doi.org/10.3390/biology12060855     2023

Castrogiovanni C, Inchingolo A, Harrison JU, Dudka D, Sen O, Burroughs N, McAinsh AD, Meraldi P. “Evidence for a HURP/EB free mixed-nucleotide zone in kinetochore-microtubules” Nature Communications. https://doi.org/10.1038/s41467-022-32421-x     2022

Dudka D, Lampson MA. “Centromere drive: model systems and experimental progress” Chromosome Research. https://doi.org/10.1007/s10577-022-09696-3     2022

Świerczek-Lasek B, Dudka D, Bauer D, Czajkowski T, Ilach K, Streminska W, Kominek A,  Piwocka K, Ciemerych MA, Archacka K. “Comparison of Differentiation Pattern and WNT/SHH Signaling in Pluripotent Stem Cells Cultured under Different Conditions” Cells. https://doi.org/10.3390/cells10102743    2021

Dudka D, Castrogiovanni C, Liaudet N, Vassal H, Meraldi P. “Spindle-Length Dependent HURP Localization Allows Centrosomes to Control Kinetochore-Fiber Plus End Dynamics”. Current Biology. https://doi.org/10.1016/j.cub.2019.08.061     2019

Dudka D*, Noatynska A*, Smith C., Liaudet N., McAinsh AD and Meraldi P. “Complete microtubule-kinetochore occupancy favors the segregation of merotelic attachments”. Nature Communications. https://doi.org/10.1038/s41467-018-04427-x * equal contribution     2018

Dudka D, Meraldi P. “Symmetry Does not Come for Free: Cellular Mechanisms to Achieve a Symmetric Cell Division”. Results and Problems in Cell Differentiation. https://doi.org/10.1007/978-3-319-53150-2_14.     2017

Tan CH, Gasic I, Huber-Reggi SP, Dudka D, Barisic M, Maiato H, Meraldi P.“Equatorial position of the metaphase plate ensures symmetric cell divisions.” Elife. https://doi.org/10.7554/eLife.05124     2015

El Dika M, Dudka D, Prigent C, Kloc M and Kubiak JZ. “Control of timing of embryonic M-phase entry and exit is differentially sensitive to CDK1 and PP2A balance” International Journal of Developmental Biology. https://doi.org/10.1387/ijdb.140101jk     2014

El Dika M, Laskowska-Kaszub K, Koryto M, Dudka D, Prigent C, Tassan JP, Kloc M, Polanski Z, Borsuk E, Kubiak JZ. “CDC6 controls dynamics of the first embryonic M phase entry and progression via CDK1 inhibition” Developmental Biology.   https://doi.org/10.1016/j.ydbio.2014.09.023     2014

 

 

 

 

Teaching

BIOS 411: Advanced Cell Biology