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Biology subjects

Van, H. T.

Publications and source records attributed to Van, H. T..

2 recordsLinked to original sources

Chromatin modifiers KMT2D, BAF, and p300 are required for de novo binding of transcription factors on enhancers

Transcription factors (TFs) bind to enhancers and recruit H3K4me1 methyltransferase KMT2D, chromatin remodeler BAF, and H3K27 acetyltransferase p300 to activate transcription. However, the role of chromatin modifiers in regulating de novo binding of TFs on enhancers remains unclear. Using a robust nuclear translocation system, we show that the muscle lineage-determining TF MyoD binds to chromatin pervasively within one hour, with half of induced MyoD binding sites co-occupied by KMT2D, BAF, and p300. On the majority of these MyoD+ enhancers, acute depletion of KMT2D or short-term inhibition of BAF or p300 enzymatic activity markedly reduces de novo binding of MyoD as well as that of KMT2D, BAF, and p300. On enhancers with intact MyoD binding despite these perturbations, we observe a cooperative recruitment among chromatin modifiers. Similar interdependent relationships are observed between the signal-dependent TF Glucocorticoid Receptor and KMT2D, BAF, and p300. Together, our findings show that chromatin modifiers are not only downstream effectors but also required for de novo binding of TFs on enhancers, refining a model of enhancer establishment as a process governed by functional cooperation rather than a strict hierarchy. Bullet pointsO_LIAcute KMT2D depletion disrupts de novo binding of MyoD, BAF, and p300 on enhancers. C_LIO_LIBAF and p300 enzymatic activities are required for de novo binding of MyoD, BAF, KMT2D, and p300 on enhancers. C_LIO_LICooperative binding of KMT2D, BAF, and p300 on MyoD+ enhancers. C_LIO_LIGR displays interdependencies with chromatin modifiers KMT2D, BAF, and p300 on enhancers. C_LI

molecular biology↗

Reducing functionally defective HSCs alleviates aging-related phenotypes in old mice

Aging is a process accompanied by functional decline in tissues and organs with great social and medical consequences. Developing effective anti-aging strategies is of great significance. In this study, we demonstrated that transplantation of young hematopoietic stem cells (HSCs) into old mice can mitigate aging phenotypes, underscoring the crucial role of HSCs in the aging process. Through comprehensive molecular and functional analyses, we identified a subset of HSCs in aged mice that exhibit "younger" molecular profiles and functions, marked by low levels of CD150 expression. Mechanistically, CD150low HSCs from old mice can effectively differentiate into downstream lineage cells but not their CD150high counterparts. Notably, transplantation of old CD150low HSCs attenuates aging phenotypes and prolongs lifespan of elderly mice compared to those transplanted with unselected or CD150high HSCs. Importantly, reducing the dysfunctional CD150high HSCs can alleviate aging phenotypes in old recipient mice. Thus, our study demonstrates the presence of "younger" HSCs in old mice, and aging-associated functional decline can be mitigated by reducing dysfunctional HSCs.

cell biology↗