Person:

Maruvka, Yosef

Loading...
Profile Picture

Email Address

AA Acceptance Date

Birth Date

Research Projects

Organizational Units

Job Title

Last Name

Maruvka

First Name

Yosef

Name

Maruvka, Yosef

Search Results

Now showing 1 - 5 of 5
  • Publication

    You Name It – How Memory and Delay Govern First Name Dynamics

    (Public Library of Science, 2012) Kessler, David A.; Maruvka, Yosef; Ouren, Jøergen; Shnerb, Nadav M.

    The adoption and abandonment of first names through time is a fascinating phenomenon that may shed light on social dynamics and the forces that determine cultural taste in general. Here we show that baby name dynamics is governed almost solely by deterministic forces, even though the emerging abundance statistics resembles the one obtained from a pure drift model. Exogenous events are shown to affect the name dynamics very rarely, and most of the year-to-year fluctuations around the deterministic trend may be attributed solely to demographic noise. We suggest that the rise and fall of a name reflect an “infection” process with delay and memory. The symmetry between adoption and abandonment speed emerges from our model without further assumptions.

  • Publication

    Stochastic Tunneling of Two Mutations in a Population of Cancer Cells

    (Public Library of Science, 2013) Haeno, Hiroshi; Maruvka, Yosef; Iwasa, Yoh; Michor, Franziska

    Cancer initiation, progression, and the emergence of drug resistance are driven by specific genetic and/or epigenetic alterations such as point mutations, structural alterations, DNA methylation and histone modification changes. These alterations may confer advantageous, deleterious or neutral effects to mutated cells. Previous studies showed that cells harboring two particular alterations may arise in a fixed-size population even in the absence of an intermediate state in which cells harboring only the first alteration take over the population; this phenomenon is called stochastic tunneling. Here, we investigated a stochastic Moran model in which two alterations emerge in a cell population of fixed size. We developed a novel approach to comprehensively describe the evolutionary dynamics of stochastic tunneling of two mutations. We considered the scenarios of large mutation rates and various fitness values and validated the accuracy of the mathematical predictions with exact stochastic computer simulations. Our theory is applicable to situations in which two alterations are accumulated in a fixed-size population of binary dividing cells.

  • Publication

    Tumor cells can follow distinct evolutionary paths to become resistant to epidermal growth factor receptor inhibition

    (2016) Hata, Aaron; Niederst, Matthew J; Archibald, Hannah L; Gomez-Caraballo, Maria; Siddiqui, Faria M; Mulvey, Hillary E; Maruvka, Yosef; Ji, Fei; Bhang, Hyo-eun C; Radhakrishna, Viveksagar Krishnamurthy; Siravegna, Giulia; Hu, Haichuan; Raoof, Sana; Lockerman, Elizabeth; Kalsy, Anuj; Lee, Dana; Keating, Celina L; Ruddy, David A; Damon, Leah J; Crystal, Adam S; Costa, Carlotta; Piotrowska, Zofia; Bardelli, Alberto; Iafrate, Anthony; Sadreyev, Ruslan; Stegmeier, Frank; Getz, Gad; Sequist, Lecia; Faber, Anthony C; Engelman, Jeffrey A

    Although mechanisms of acquired resistance of EGFR mutant non-small cell lung cancers to EGFR inhibitors have been identified, little is known about how resistant clones evolve during drug therapy. Here, we observe that acquired resistance caused by the T790M gatekeeper mutation can occur either by selection of pre-existing T790M clones or via genetic evolution of initially T790M-negative drug tolerant cells. The path to resistance impacts the biology of the resistant clone, as those that evolved from drug tolerant cells had a diminished apoptotic response to third generation EGFR inhibitors that target T790M EGFR; treatment with navitoclax, an inhibitor of BCL-XL and BCL-2 restored sensitivity. We corroborated these findings using cultures derived directly from EGFR inhibitor-resistant patient tumors. These findings provide evidence that clinically relevant drug resistant cancer cells can both pre-exist and evolve from drug tolerant cells, and point to therapeutic opportunities to prevent or overcome resistance in the clinic.

  • Publication

    Analysis of Somatic Microsatellite Indels Identifies Driver Events in Human Tumors

    (Springer Science and Business Media LLC, 2017-09-11) Maruvka, Yosef; Mouw, Kent; Karlic, Rosa; Parasuraman, Prasanna; Kamburov, Atanas; Polak, Paz; Haradhvala, Nicholas; Hess, Julian; Rheinbay, Esther; Brody, Yehuda; Koren, Amnon; Braunstein, Lior; D'Andrea, Alan; Lawrence, Michael; Bass, Adam; Bernards, Andre; Michor, Franziska; Getz, Gad

    Microsatellites (MSs) are tracts of variable-length repeats of short DNA motifs that exhibit high rates of mutation in the form of insertions or deletions (indels) of the repeated motif. Despite their prevalence, the contribution of somatic MS indels to cancer has been largely unexplored, owing to difficulties in detecting them in short-read sequencing data. Here we present two tools: MSMuTect, for accurate detection of somatic MS indels, and MSMutSig, for identification of genes containing MS indels at a higher frequency than expected by chance. Applying MSMuTect to whole-exome data from 6,747 human tumors representing 20 tumor types, we identified >1,000 previously undescribed MS indels in cancer genes. Additionally, we demonstrate that the number and pattern of MS indels can accurately distinguish microsatellite-stable tumors from tumors with microsatellite instability, thus potentially improving classification of clinically relevant subgroups. Finally, we identified seven MS indel driver hotspots: four in known cancer genes (ACVR2A, RNF43, JAK1, and MSH3) and three in genes not previously implicated as cancer drivers (ESRP1, PRDM2, and DOCK3).

  • Publication

    WRN Helicase is a Synthetic Lethal Target in Microsatellite Unstable Cancers

    (Cold Spring Harbor Laboratory, 2018-12-21) Bass, Adam; Chan, Edmond; Shibue, Tsukasa; McFarland, James; Gaeta, Benjamin; Ghandi, Mahmoud; Dumont, Nancy; Gonzalez, Alfredo; McPartlan, Justine; Li, Tianxia; Zhang, Yanxi; Liu, Jie Bin; Lazaro, Jean-Bernard; Gu, Peili; Piett, Cortt; Apffel, Annie; Ali, Syed Omar; Deasy, Rebecca; Keskula, Paula; Ng, Raymond; Roberts, Emma; Reznichenko, Elizaveta; Leung, Lisa; Alimova, Maria; Schenone, Monica; Islam, Manirul; Maruvka, Yosef; Liu, Yang; Roper, Jatin; Raghavan, Srivatsan; Giannakis, Marios; Tseng, Yuen-Yi; Nagel, Zachary; D’Andrea, Alan; Root, David; Boehm, Jesse; Getz, Gad; Chang, Sandy; Golub, Todd; Tsherniak, Aviad; Vazquez, Francisca

    Synthetic lethality, an interaction whereby the co-occurrence of two genetic events leads to cell death but one event alone does not, can be exploited for cancer therapeutics1. DNA repair processes represent attractive synthetic lethal targets since many cancers exhibit an impaired DNA repair pathway, which can lead to dependence on specific repair proteins2. The success of poly (ADP-ribose) polymerase 1 (PARP-1) inhibitors in homologous recombination-deficient cancers highlights the potential of this approach3. Hypothesizing that other DNA repair defects would give rise to synthetic lethal relationships, we queried dependencies in cancers with microsatellite instability (MSI), which results from deficient DNA mismatch repair (dMMR). Here we analyzed data from large-scale CRISPR/Cas9 knockout and RNA interference (RNAi) silencing screens and found that the RecQ DNA helicase WRN was selectively essential in MSI models in vitro and in vivo, yet dispensable in microsatellite stable (MSS) models. WRN depletion induced double-strand DNA breaks and promoted apoptosis and cell cycle arrest selectively in MSI models. MSI cancer models required the helicase activity, but not the exonuclease activity of WRN. These findings expose WRN as a synthetic lethal vulnerability and promising drug target for MSI cancers.