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蛋白激酶 D 参与了小鼠角蛋白细胞原代培养中向分化的可逆性决定。

Protein kinase D is implicated in the reversible commitment to differentiation in primary cultures of mouse keratinocytes.

机构信息

Graduate Program in Molecular and Cellular Biology, Stony Brook University, Stony Brook, New York 11794, USA.

出版信息

J Biol Chem. 2010 Jul 23;285(30):23387-97. doi: 10.1074/jbc.M110.105619. Epub 2010 May 12.

Abstract

Although commitment to epidermal differentiation is generally considered to be irreversible, differentiated keratinocytes (KCs) have been shown to maintain a regenerative potential and to reform skin epithelia when placed in a suitable environment. To obtain insights into the mechanism of reinitiation of this proliferative response in differentiated KCs, we examined the reversibility of commitment to Ca(2+)-induced differentiation. Lowering Ca(2+) concentration to micromolar levels triggered culture-wide morphological and biochemical changes, as indicated by derepression of cyclin D1, reinitiation of DNA synthesis, and acquisition of basal cell-like characteristics. These responses were inhibited by Goedecke 6976, an inhibitor of protein kinase D (PKD) and PKCalpha, but not with GF109203X, a general inhibitor of PKCs, suggesting PKD activation by a PKC-independent mechanism. PKD activation followed complex kinetics with a biphasic early transient phosphorylation within the first 6 h, followed by a sustained and progressive phosphorylation beginning at 24 h. The second phase of PKD activation was followed by prolonged ERK1/2 signaling and progression to DNA synthesis in response to the low Ca(2+) switch. Specific knockdown of PKD-1 by RNA interference or expression of a dominant negative form of PKD-1 did not have a significant effect on normal KC proliferation and differentiation but did inhibit Ca(2+)-mediated reinitiation of proliferation and reversion in differentiated cultures. The present study identifies PKD as a major regulator of a proliferative response in differentiated KCs, probably through sustained activation of the ERK-MAPK pathway, and provides new insights into the process of epidermal regeneration and wound healing.

摘要

虽然表皮分化的承诺通常被认为是不可逆的,但已经表明分化的角质形成细胞(KCs)具有再生潜力,并在置于合适的环境中时可以重新形成皮肤上皮。为了深入了解这种分化的 KC 增殖反应重新启动的机制,我们研究了钙(Ca 2+)诱导分化的承诺的可逆性。将 Ca 2+浓度降低到微摩尔水平会触发广泛的形态和生化变化,如 cyclin D1 的去抑制、DNA 合成的重新启动以及获得基底细胞样特征。这些反应被 Goedecke 6976 抑制,Goedecke 6976 是蛋白激酶 D(PKD)和 PKCalpha 的抑制剂,但不是 GF109203X,PKC 的通用抑制剂,表明 PKD 通过 PKC 独立的机制激活。PKD 激活遵循复杂的动力学,在最初的 6 小时内有一个双相早期瞬时磷酸化,然后在 24 小时开始持续和渐进的磷酸化。PKD 激活的第二阶段伴随着 ERK1/2 信号的延长,并在低钙(Ca 2+)转换时响应进行 DNA 合成。PKD-1 的 RNA 干扰特异性敲低或 PKD-1 的显性负形式的表达对正常 KC 的增殖和分化没有显著影响,但确实抑制了分化培养中 Ca 2+介导的增殖重新启动和反转。本研究确定 PKD 是分化的 KC 增殖反应的主要调节剂,可能通过持续激活 ERK-MAPK 途径,并为表皮再生和伤口愈合过程提供了新的见解。

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