Kumar Ranjit, Pavithra Soundara Raghavan, Tatu Utpal
Department of Biochemistry, Indian Institute of Science, Bangalore 560 012, India.
J Biosci. 2007 Apr;32(3):531-6. doi: 10.1007/s12038-007-0052-x.
We have recently implicated heat shock protein 90 from Plasmodium falciparum (PfHsp90) as a potential drug target against malaria. Using inhibitors specific to the nucleotide binding domain of Hsp90, we have shown potent growth inhibitory effects on development of malarial parasite in human erythrocytes. To gain better understanding of the vital role played by PfHsp90 in parasite growth,we have modeled its three dimensional structure using recently described full length structure of yeast Hsp90.S equence similarity found between PfHsp90 and yeast Hsp90 allowed us to model the core structure with high confidence. The superimposition of the predicted structure with that of the template yeast Hsp90 structure reveals an RMSD of 3.31 Angstrom. The N-terminal and middle domains showed the least RMSD (1.76 Angstrom) while the more divergent C-terminus showed a greater RMSD (2.84 Angstrom) with respect to the template. The structure shows overall conservation of domains involved in nucleotide binding, ATPase activity, co-chaperone binding as well as inter-subunit interactions. Important co-chaperones known to modulate Hsp90 function in other eukaryotes are conserved in malarial parasite as well. An acidic stretch of amino acids found in the linker region, which is uniquely extended in PfHsp90 could not be modeled in this structure suggesting a flexible conformation. Our results provide a basis to compare the overall structure and functional pathways dependent on PfHsp90 in malarial parasite. Further analysis of differences found between human and parasite Hsp90 may make it possible to design inhibitors targeted specifically against malaria.
我们最近发现恶性疟原虫的热休克蛋白90(PfHsp90)是抗疟疾的潜在药物靶点。使用针对Hsp90核苷酸结合域的特异性抑制剂,我们已证明其对疟原虫在人红细胞中的发育具有强大的生长抑制作用。为了更好地理解PfHsp90在寄生虫生长中所起的关键作用,我们利用最近描述的酵母Hsp90全长结构对其三维结构进行了建模。PfHsp90与酵母Hsp90之间的序列相似性使我们能够高度自信地对核心结构进行建模。预测结构与模板酵母Hsp90结构的叠加显示均方根偏差(RMSD)为3.31埃。相对于模板,N端和中间结构域的RMSD最小(1.76埃),而差异较大的C端的RMSD更大(2.84埃)。该结构显示出参与核苷酸结合、ATP酶活性、共伴侣结合以及亚基间相互作用的结构域总体上具有保守性。在其他真核生物中已知调节Hsp90功能的重要共伴侣在疟原虫中也具有保守性。在连接区发现的一段酸性氨基酸序列在PfHsp90中独特地延伸,在该结构中无法建模,这表明其构象具有灵活性。我们的结果为比较疟原虫中依赖PfHsp90的整体结构和功能途径提供了基础。对人和寄生虫Hsp90之间差异的进一步分析可能使设计专门针对疟疾的抑制剂成为可能。