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Prunskaite-Hyyrylainen, R.

Publications and source records attributed to Prunskaite-Hyyrylainen, R..

2 recordsLinked to original sources

DTX3L and USP28 fine-tune DNA double strand repair through mutual regulation of their protein levels

The DNA damage response (DDR) relies on a complex protein network to maintain genomic integrity, yet the interplay between post-translational modifiers remains poorly understood. Here, we uncover a novel regulatory axis between the E3 ubiquitin ligase DTX3L and the deubiquitinase USP28 at DNA double-strand breaks (DSBs). Our results reveal a sophisticated feedback mechanism in which DTX3L ubiquitinates USP28, leading to its proteasomal degradation, while USP28 counteracts by deubiquitinating both itself and DTX3L. This cross-regulation fine-tunes DSB repair in multiple pathways, including non-homologous end joining (NHEJ), homologous recombination (HR), single-strand annealing (SSA), and microhomology-mediated end joining (MMEJ). Strikingly, the detrimental effects of USP28 depletion on these repair pathways were rescued by concurrent DTX3L knockdown. Collectively, our work uncovers a novel layer of DDR regulation in which DTX3L and USP28s antagonistic activities calibrate cellular responses to genotoxic stress, thus identifying promising therapeutic targets to combat diseases associated with genomic instability. HighlightsO_LIDTX3L and USP28 physically interact and colocalize in cellular sub-compartments, with the N-terminal D1-D3 domains of DTX3L primarily mediating the interaction C_LIO_LIDTX3L ubiquitinates USP28 for degradation, while USP28 deubiquitinates itself and DTX3L, creating a sophisticated feedback mechanism. C_LIO_LIThe DTX3L-USP28 circuit influences levels of key proteins like HIF-1, p53, and c-MYC, suggesting broader impacts on cellular stress responses. C_LIO_LIDTX3L and USP28 cooperatively regulate multiple DSB repair pathways, including NHEJ, HR, SSA, and MMEJ, with USP28 depletion effects rescued by DTX3L silencing. C_LI

biochemistry↗

Unraveling the principles of mammary gland branching morphogenesis

Branching morphogenesis is a characteristic feature of many essential organs such as the lung, kidney, and most glands, and the net result of two tissue behaviors: branch point initiation and elongation. Each branched organ has a distinct architecture customized to its physiological function, but how patterning occurs in these ramified tubular structures is a fundamental problem of development. Here we use quantitative 3D morphometrics, time-lapse imaging, manipulation of ex vivo cultured embryonic organs, and mice deficient in the planar cell polarity component Vangl2 to address this question in the developing mammary gland. Our results show that the embryonic epithelial trees are highly complex in topology owing to the flexible use of two distinct modes of branch point initiation: lateral branching and tip bifurcation. This non-stereotypy was contrasted by the remarkably constant average branch frequency indicating a ductal growth-invariant, yet stochastic propensity to branch. The probability to branch was malleable and could be tuned by manipulating the Fgf10 and Tgf-{beta}1 pathways. Finally, our in vivo and ex vivo time-lapse imaging suggested the involvement of tissue rearrangements in mammary branch elongation.

developmental biology↗