TY - JOUR
T1 - mDia formins form hetero-oligomers and cooperatively maintain murine hematopoiesis
AU - Li, Zhaofeng
AU - Su, Meng
AU - Xie, Xinshu
AU - Wang, Pan
AU - Bi, Honghao
AU - Li, Ermin
AU - Ren, Kehan
AU - Dong, Lili
AU - Lv, Zhiyi
AU - Ma, Xuezhen
AU - Liu, Yijie
AU - Zhao, Baobing
AU - Peng, Yuanliang
AU - Liu, Jing
AU - Liu, Lu
AU - Yang, Jing
AU - Ji, Peng
AU - Mei, Yang
N1 - Publisher Copyright:
© 2023 Li et al. This is an open access article distributed under the terms of the Creative Commons Attribution License, which permits unrestricted use, distribution, and reproduction in any medium, provided the original author and source are credited.
PY - 2023/12/29
Y1 - 2023/12/29
N2 - mDia formin proteins regulate the dynamics and organization of the cytoskeleton through their linear actin nucleation and polymerization activities. We previously showed that mDia1 deficiency leads to aberrant innate immune activation and induces myelodysplasia in a mouse model, and mDia2 regulates enucleation and cytokinesis of erythroblasts and the engraftment of hematopoietic stem and progenitor cells (HSPCs). However, whether and how mDia formins interplay and regulate hematopoiesis under physiological and stress conditions remains unknown. Here, we found that both mDia1 and mDia2 are required for HSPC regeneration under stress, such as serial plating, aging, and reconstitution after myeloid ablation. We showed that mDia1 and mDia2 form hetero-oligomers through the interactions between mDia1 GBD-DID and mDia2 DAD domains. Double knockout of mDia1 and mDia2 in hematopoietic cells synergistically impaired the filamentous actin network and serum response factor-involved transcriptional signaling, which led to declined HSPCs, severe anemia, and significant mortality in neonates and newborn mice. Our data demonstrate the potential roles of mDia hetero-oligomerization and their non-rodent functions in the regulation of HSPCs activity and orchestration of hematopoiesis.
AB - mDia formin proteins regulate the dynamics and organization of the cytoskeleton through their linear actin nucleation and polymerization activities. We previously showed that mDia1 deficiency leads to aberrant innate immune activation and induces myelodysplasia in a mouse model, and mDia2 regulates enucleation and cytokinesis of erythroblasts and the engraftment of hematopoietic stem and progenitor cells (HSPCs). However, whether and how mDia formins interplay and regulate hematopoiesis under physiological and stress conditions remains unknown. Here, we found that both mDia1 and mDia2 are required for HSPC regeneration under stress, such as serial plating, aging, and reconstitution after myeloid ablation. We showed that mDia1 and mDia2 form hetero-oligomers through the interactions between mDia1 GBD-DID and mDia2 DAD domains. Double knockout of mDia1 and mDia2 in hematopoietic cells synergistically impaired the filamentous actin network and serum response factor-involved transcriptional signaling, which led to declined HSPCs, severe anemia, and significant mortality in neonates and newborn mice. Our data demonstrate the potential roles of mDia hetero-oligomerization and their non-rodent functions in the regulation of HSPCs activity and orchestration of hematopoiesis.
UR - https://www.scopus.com/pages/publications/85181233488
U2 - 10.1371/journal.pgen.1011084
DO - 10.1371/journal.pgen.1011084
M3 - Article
C2 - 38157491
AN - SCOPUS:85181233488
SN - 1553-7390
VL - 19
JO - PLoS Genetics
JF - PLoS Genetics
IS - 12
M1 - e1011084
ER -