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首页> 外文期刊>Blood: The Journal of the American Society of Hematology >Importance of environmental stiffness for megakaryocyte differentiation and proplatelet formation
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Importance of environmental stiffness for megakaryocyte differentiation and proplatelet formation

机译:巨核细胞分化和丙替塞形成环境刚度的重要性

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摘要

Megakaryocyte (MK) differentiation occurs within the bone marrow (BM), a complex 3-dimensional (3D) environment of low stiffness exerting local external constraints. To evaluate the influence of the 3D mechanical constraints that MKs may encounter in vivo, we differentiated mouse BM progenitors in methylcellulose (MC) hydrogels tuned to mimic BM stiffness. We found that MKs grown in a medium of 30- to 60-Pa stiffness more closely resembled those in the BM in terms of demarcation membrane system (DMS) morphological aspect and exhibited higher ploidy levels, as compared with MKs in liquid culture. Following resuspension in a liquid medium, MC-grown MKs displayed twice as much proplatelet formation as cells grown in liquid culture. Thus, the MC gel, by mimicking external constraints, appeared to positively influence MK differentiation. To determine whether MKs adapt to extracellular stiffness through mechanotransduction involving actomyosin-based modulation of the intracellular tension, myosin-deficient (Myh9(-/-)) progenitors were grown in MC gels. Absence of myosin resulted in abnormal cell deformation and strongly decreased proplatelet formation, similarly to features observed for Myh9(-/-) MKs differentiated in situ but not in vitro. Moreover, megakaryoblastic leukemia 1 (MKL1), a well-known actor in mechanotransduction, was found to be preferentially relocated within the nucleus of MC-differentiated MKs, whereas its inhibition prevented MC-mediated increased proplatelet formation. Altogether, these data show that a 3D medium mimicking BM stiffness contributes, through the myosin IIA and MKL1 pathways, to a more favorable in vitro environment for MK differentiation, which ultimately translates into increased proplatelet production.
机译:巨核细胞(MK)差异发生在骨髓(BM)内,其具有施加局部外部约束的低刚度的复杂三维(3D)环境。为了评估MKS在体内可能遇到的3D机械约束的影响,我们将小鼠BM祖细胞分化为甲基纤维素(MC)水凝胶以模仿BM刚度。我们发现,在30至60Pa刚度的介质中生长的MKS在分界膜系统(DMS)形态方面(DMS)形态方面的介质中较高,并且与液体培养物中的MKS相比,具有更高的倍率水平。在液体培养基中重新悬浮后,MC-种植MKS显示出两倍的丙替衣形成,因为在液体培养中生长的细胞。因此,通过模拟外部约束的MC凝胶似乎肯定地影响了MK差异。为了确定MKS是否通过机电展示适应细胞外刚度,涉及基于肌动素的细胞内张力的调节,霉菌素(MyH9( - / - ))祖细胞生长在MC凝胶中。缺乏肌球蛋白导致细胞变形异常和强烈降低的丙替塞形成,类似于对MyH9( - / - )MKS观察到的特征,以原位分化但不是体外。此外,发现MegakaryoBolas弹性白血病1(MKL1),在机械调节中众所周知的演员,优先于MC分化MK的核中重新定位,而其抑制阻止MC介导的丙替塞形成的增加。总共,这些数据表明,模仿BM刚度的3D介质通过肌霉素IIA和MKL1途径贡献,对MK分化的更有利的体外环境,最终转化为增加的丙替塞生产。

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