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Biology subjects

Fowler, S.

Publications and source records attributed to Fowler, S..

2 recordsLinked to original sources

Unc 51-like autophagy-activating kinase (ULK1) mediates clearance of free {alpha}-globin in {beta}-thalassemia

Erythroid maturation is coordinated to maximize the production of hemoglobin A heterotetramers (2{beta}2) and minimize the accumulation of potentially toxic free - or {beta}-globin subunits. In {beta}-thalassemia, mutations in the {beta}-globin gene cause a build-up of free -globin, which forms intracellular precipitates that impair erythroid cell maturation and viability. Protein quality-control systems mitigate {beta}-thalassemia pathophysiology by degrading toxic free -globin. We show that loss of the Unc 51-like autophagy-activating kinase gene Ulk1 in {beta}-thalassemic mice reduces autophagic clearance of -globin in red cell precursors and exacerbates disease phenotypes, whereas inactivation of the canonical autophagy gene Atg5 has minimal effects. Systemic treatment with rapamycin to inhibit the ULK1 inhibitor mTORC1 reduces -globin precipitates and lessens pathologies in {beta}-thalassemic mice, but not in those lacking Ulk1. Similarly, rapamycin reduces free -globin accumulation in erythroblasts derived from {beta}-thalassemic patient CD34+ hematopoietic progenitors. Our findings identify a new, drug-regulatable pathway for ameliorating {beta}-thalassemia.\n\nOne Sentence SummaryRapamycin alleviates {beta}-thalassemia by stimulating ULK1-dependent autophagy of toxic free -globin.

cell biology

LIM Protein Ajuba associates with the RPA complex through direct and cell cycle-dependent interaction with the RPA70 subunit.

DNA damage response pathways are essential for genome stability and cell survival. Specifically, the ATR kinase is activated by DNA replication stress. An early event in this activation is the recruitment and phosphorylation of RPA, a single stranded DNA binding complex composed of three subunits, RPA70,RPA32 and RPA14. We have previously shown that the LIM protein Ajuba associates with RPA, and that depletion of Ajuba leads to potent activation of ATR. In this study, we show evidence that the Ajuba-RPA interaction occurs through direct protein contact with RPA70, and that their association is cell cycle-regulated and is reduced upon DNA replication stress. We propose a model in which Ajuba negatively regulates the ATR pathway by directly interacting with RPA70, thereby preventing an inappropriate ATR activation. Our results provide a framework to understand the mechanism of regulation of ATR in human cells, which is important to prevent cellular transformation and tumorigenesis.

cancer biology