Parajuli Bibek, Acharya Kriti, Bach Harry Charles, Zhang Shiyu, Abrams Cameron F, Chaiken Irwin
Department of Biochemistry and Molecular Biology, Drexel University College of Medicine, Philadelphia, PA 19102, USA.
Department of Chemical and Biological Engineering, Drexel University, Philadelphia, PA 19104, USA.
Viruses. 2025 Jan 9;17(1):82. doi: 10.3390/v17010082.
Microvirin is a lectin molecule known to have monovalent interaction with glycoprotein gp120. A previously reported high-resolution structural analysis defines the mannobiose-binding cavity of Microvirin. Nonetheless, structure does not directly define the energetics of binding contributions of protein contact residues. To better understand the nature of the MVN-Env glycan interaction, we used mutagenesis to evaluate the residue contributions to the mannobiose binding site of MVN that are important for Env gp120 glycan binding. MVN binding site amino acid residues were individually replaced by alanine, and the resulting purified recombinant MVN variants were examined for gp120 interaction using competition Enzyme-Linked Immunosorbent Assay (ELISA), biosensor surface plasmon resonance, calorimetry, and virus neutralization assays. Our findings highlight the role of both uncharged polar and non-polar residues in forming a hydropathic recognition site for the monovalent glycan engagement of Microvirin, in marked contrast to the charged residues utilized in the two Cyanovirin-N (CVN) glycan-binding sites.
微小病毒素是一种已知与糖蛋白gp120具有单价相互作用的凝集素分子。先前报道的高分辨率结构分析确定了微小病毒素的甘露二糖结合腔。然而,结构并不能直接定义蛋白质接触残基结合贡献的能量学。为了更好地理解微小病毒素(MVN)与包膜糖蛋白(Env)聚糖相互作用的本质,我们使用诱变方法来评估MVN中对Env gp120聚糖结合重要的甘露二糖结合位点的残基贡献。将MVN结合位点的氨基酸残基逐个替换为丙氨酸,并使用竞争酶联免疫吸附测定(ELISA)、生物传感器表面等离子体共振、量热法和病毒中和试验,对所得纯化的重组MVN变体进行gp120相互作用检测。我们的研究结果突出了不带电荷的极性和非极性残基在形成微小病毒素单价聚糖结合的疏水识别位点中的作用,这与两种蓝藻病毒素-N(CVN)聚糖结合位点中使用的带电荷残基形成显著对比。