A Conserved Tryptophan (Trp10) at the Hydrophobic Core Modulates the Stability and Inhibitory Activity of Potato I Type Inhibitors.

IF 1 4区 生物学 Q4 BIOCHEMISTRY & MOLECULAR BIOLOGY
Xiaodong Cui, Jiahui Shen, Jiajie Wang, Chen Li, Fang Li, Jiao Li
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引用次数: 0

Abstract

Background: Different inhibitor families have their own conserved three-dimensional structures, but how these structures determine whether a protein can become an inhibitor is still unknown. The buckwheat trypsin inhibitor (BTI) pertains to the Potato I type inhibitor family, which is a simple and essential bio-molecule that serves as a model for the investigation of protease-inhibitor interaction.

Objective: To study the effects of mutations at Trp10 and Ile25 in the hydrophobic cavity (scaffold) of rBTI on its inhibitory activity and stability.

Methods: Site-directed mutagenesis and molecular modeling were performed using the sequence of BTI. The hydrogen bonds formed by all amino acids and conformational differences of Trp53 were analyzed in the tertiary structures of rBTI and mutants.

Results: Mutant rBTI-W10A almost completely lost its inhibitory activity (retaining 10%), while rBTI-I25A retained about 50% of its inhibitory activity. Both rBTI-W10A and rBTI-I25A could be degraded by trypsin. The hydrogen bond analysis results showed that mutating Trp10 or Ile25 weakened the specific cohesion interactions in the hydrophobic core of rBTI, disrupting the tight hydrogen bond network in the cavity. This further led to difficulty in maintaining the binding loop conformation, ultimately causing the Trp53 to undergo conformational changes. It was also difficult for residues in the mutants to form hydrogen bonds with amino acids in bovine trypsin; thus, the mutants could not stably bind to trypsin.

Conclusion: Our findings suggest that the hydrophobic core is also an important factor in the maintenance of inhibitory activity and stability of rBTI.

疏水核心的一个保守色氨酸(Trp10)调节马铃薯 I 型抑制剂的稳定性和抑制活性。
背景:不同的抑制剂家族都有各自保守的三维结构,但这些结构如何决定蛋白质能否成为抑制剂仍是未知数。荞麦胰蛋白酶抑制剂(BTI)属于土豆 I 型抑制剂家族,是一种简单而重要的生物分子,可作为研究蛋白酶-抑制剂相互作用的模型:研究 rBTI 疏水腔(支架)中 Trp10 和 Ile25 的突变对其抑制活性和稳定性的影响:方法:利用 BTI 的序列进行定点突变和分子建模。方法:利用 BTI 序列进行定点突变和分子建模,分析了 rBTI 和突变体三级结构中所有氨基酸形成的氢键以及 Trp53 的构象差异:结果:突变体rBTI-W10A几乎完全丧失了抑制活性(保留了10%),而rBTI-I25A保留了约50%的抑制活性。rBTI-W10A 和 rBTI-I25A 都能被胰蛋白酶降解。氢键分析结果表明,突变 Trp10 或 Ile25 削弱了 rBTI 疏水核心中的特异性内聚相互作用,破坏了空腔中紧密的氢键网络。这进一步导致难以维持结合环构象,最终导致 Trp53 发生构象变化。突变体中的残基也很难与牛胰蛋白酶中的氨基酸形成氢键;因此,突变体无法与胰蛋白酶稳定结合:我们的研究结果表明,疏水核心也是维持 rBTI 抑制活性和稳定性的一个重要因素。
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来源期刊
Protein and Peptide Letters
Protein and Peptide Letters 生物-生化与分子生物学
CiteScore
2.90
自引率
0.00%
发文量
98
审稿时长
2 months
期刊介绍: Protein & Peptide Letters publishes letters, original research papers, mini-reviews and guest edited issues in all important aspects of protein and peptide research, including structural studies, advances in recombinant expression, function, synthesis, enzymology, immunology, molecular modeling, and drug design. Manuscripts must have a significant element of novelty, timeliness and urgency that merit rapid publication. Reports of crystallization and preliminary structure determination of biologically important proteins are considered only if they include significant new approaches or deal with proteins of immediate importance, and preliminary structure determinations of biologically important proteins. Purely theoretical/review papers should provide new insight into the principles of protein/peptide structure and function. Manuscripts describing computational work should include some experimental data to provide confirmation of the results of calculations. Protein & Peptide Letters focuses on: Structure Studies Advances in Recombinant Expression Drug Design Chemical Synthesis Function Pharmacology Enzymology Conformational Analysis Immunology Biotechnology Protein Engineering Protein Folding Sequencing Molecular Recognition Purification and Analysis
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