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EppA是盘基网柄菌中DdERK2的一种假定底物,可调节环磷酸腺苷传递和趋化性。

EppA, a putative substrate of DdERK2, regulates cyclic AMP relay and chemotaxis in Dictyostelium discoideum.

作者信息

Chen Songyang, Segall Jeffrey E

机构信息

Department of Anatomy and Structural Biology, Albert Einstein College of Medicine, 1300 Morris Park Ave., Bronx, New York 10461, USA.

出版信息

Eukaryot Cell. 2006 Jul;5(7):1136-46. doi: 10.1128/EC.00383-05.

Abstract

The mitogen-activated protein kinase DdERK2 is critical for cyclic AMP (cAMP) relay and chemotaxis to cAMP and folate, but the details downstream of DdERK2 are unclear. To search for targets of DdERK2 in Dictyostelium discoideum, 32PO4(3-)-labeled protein samples from wild-type and Dderk2- cells were resolved by 2-dimensional electrophoresis. Mass spectrometry was used to identify a novel 45-kDa protein, named EppA (ERK2-dependent phosphoprotein A), as a substrate of DdERK2 in Dictyostelium. Mutation of potential DdERK2 phosphorylation sites demonstrated that phosphorylation on serine 250 of EppA is DdERK2 dependent. Changing serine 250 to alanine delayed development of Dictyostelium and reduced Dictyostelium chemotaxis to cAMP. Although overexpression of EppA had no significant effect on the development or chemotaxis of Dictyostelium, disruption of the eppA gene led to delayed development and reduced chemotactic responses to both cAMP and folate. Both eppA gene disruption and overexpression of EppA carrying the serine 250-to-alanine mutation led to inhibition of intracellular cAMP accumulation in response to chemoattractant cAMP, a pivotal process in Dictyostelium chemotaxis and development. Our studies indicate that EppA regulates extracellular cAMP-induced signal relay and chemotaxis of Dictyostelium.

摘要

有丝分裂原活化蛋白激酶DdERK2对于环磷酸腺苷(cAMP)传递以及对cAMP和叶酸的趋化作用至关重要,但DdERK2下游的具体细节尚不清楚。为了在盘基网柄菌中寻找DdERK2的靶点,通过二维电泳分离了来自野生型和Dderk2-细胞的32PO4(3-)标记的蛋白质样品。采用质谱法鉴定出一种新的45 kDa蛋白质,命名为EppA(ERK2依赖性磷酸化蛋白A),作为盘基网柄菌中DdERK2的底物。对潜在的DdERK2磷酸化位点进行突变表明,EppA丝氨酸250位点的磷酸化依赖于DdERK2。将丝氨酸250突变为丙氨酸会延迟盘基网柄菌的发育,并降低其对cAMP的趋化性。虽然EppA的过表达对盘基网柄菌的发育或趋化性没有显著影响,但eppA基因的破坏会导致发育延迟,并降低对cAMP和叶酸的趋化反应。eppA基因破坏以及携带丝氨酸250突变为丙氨酸的EppA的过表达均导致对趋化因子cAMP的细胞内cAMP积累受到抑制,这是盘基网柄菌趋化性和发育中的一个关键过程。我们的研究表明,EppA调节盘基网柄菌细胞外cAMP诱导的信号传递和趋化性。

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