Kang Sunmi, Kwon Hyuknam, Wen He, Song Youngmin, Frueh Dominique, Ahn Hee-Chul, Yoo Seung Hyun, Wagner Gerhard, Park Sunghyouk
Department of Biochemistry and Center for Advanced Medical Education by BK21 Project, School of Medicine, Inha University, Chungsuk Bldg., Rm. 505, Shinheung-dong, Chung-gu, Incheon, Korea, 400-712.
FASEB J. 2011 Mar;25(3):840-50. doi: 10.1096/fj.10-160705. Epub 2010 Nov 17.
The roles of calmodulin (CaM) have been key points of controversy in the regulation of inositol-1,4,5-trisphosphate receptor (IP(3)R). To address the issue, we studied the interaction between CaM and the suppressor domain of IP(3)R, a key allosteric regulatory domain. First, by means of a pulldown and a fluorescence titration experiment, we confirmed the interaction. Through subsequent NMR binding experiments, we observed dramatic peak disappearances of the suppressor domain on interaction with apo-CaM. The data indicated that apo-CaM induces large-scale dynamic conformational changes in the suppressor domain, involving partial unfolding and subdomain rearrangement. Analysis of the NMR data of CaM surprisingly revealed that its C lobe alone can cause such changes. Further binding experiments showed that calcium allows the free N lobe to bind to the suppressor domain, which induces extra conformational changes in both of the proteins. These results were also confirmed with CaM deletion mutants with either the N or C lobe. On the basis of this novel binding mechanism, we propose a model in which the partial unfolding of the suppressor domain by apo-CaM and the stepwise binding of the N lobe of CaM to the suppressor domain are important elements of calcium/CaM inhibition of IP(3)R. We believe that our working model encompasses previous regulation mechanisms of IP(3)R by calcium/CaM and provides new insights into the CaM-target interaction.
钙调蛋白(CaM)在肌醇-1,4,5-三磷酸受体(IP(3)R)调节中的作用一直是争议的焦点。为了解决这个问题,我们研究了CaM与IP(3)R抑制结构域之间的相互作用,该结构域是一个关键的变构调节结构域。首先,通过下拉实验和荧光滴定实验,我们证实了这种相互作用。通过随后的核磁共振结合实验,我们观察到抑制结构域与脱钙钙调蛋白(apo-CaM)相互作用时显著的峰消失。数据表明,apo-CaM在抑制结构域中诱导了大规模的动态构象变化,包括部分解折叠和亚结构域重排。对CaM的核磁共振数据的分析令人惊讶地发现,仅其C叶就能引起这种变化。进一步的结合实验表明,钙离子使游离的N叶能够与抑制结构域结合,这在两种蛋白质中都诱导了额外的构象变化。这些结果也通过缺失N叶或C叶的CaM突变体得到了证实。基于这种新的结合机制,我们提出了一个模型,其中apo-CaM引起的抑制结构域的部分解折叠以及CaM的N叶与抑制结构域的逐步结合是钙/CaM对IP(3)R抑制作用的重要因素。我们相信我们的工作模型涵盖了以前钙/CaM对IP(3)R的调节机制,并为CaM-靶标相互作用提供了新的见解。