4.6 Article

Phosphorylation of Thr9 Affects the Folding Landscape of the N-Terminal Segment of Human AGT Enhancing Protein Aggregation of Disease-Causing Mutants

期刊

MOLECULES
卷 27, 期 24, 页码 -

出版社

MDPI
DOI: 10.3390/molecules27248762

关键词

conformational landscape; spectroscopy; circular dichroism; NMR; phosphorylation; mutation; genetic disease; protein misfolding; primary hyperoxaluria type I; statistical mechanics

资金

  1. Comunidad Valenciana [CIAICO/2021/135]
  2. AULA FUNCANIS-UGR
  3. ERDF/Spanish Ministry of Science, Innovation, and Universities-State Research Agency [RTI2018-096246-B-I00]
  4. Consejeria de Economia, Conocimiento, Empresas, y Universidad, Junta de Andalucia [P18-RT-2413]
  5. ERDF/ Counseling of Economic transformation, Industry, Knowledge, and Universities [B-BIO-84-UGR20]

向作者/读者索取更多资源

The mutations G170R and I244T are the most common disease causes in primary hyperoxaluria type I. This study found that phosphorylation of T9 may affect the conformation of NTT-AGT and synergize with PH1-causing mutations to promote aggregation in a genotype-specific manner.
The mutations G170R and I244T are the most common disease cause in primary hyperoxaluria type I (PH1). These mutations cause the misfolding of the AGT protein in the minor allele AGT-LM that contains the P11L polymorphism, which may affect the folding of the N-terminal segment (NTT-AGT). The NTT-AGT is phosphorylated at T9, although the role of this event in PH1 is unknown. In this work, phosphorylation of T9 was mimicked by introducing the T9E mutation in the NTT-AGT peptide and the full-length protein. The NTT-AGT conformational landscape was studied by circular dichroism, NMR, and statistical mechanical methods. Functional and stability effects on the full-length AGT protein were characterized by spectroscopic methods. The T9E and P11L mutations together reshaped the conformational landscape of the isolated NTT-AGT peptide by stabilizing ordered conformations. In the context of the full-length AGT protein, the T9E mutation had no effect on the overall AGT function or conformation, but enhanced aggregation of the minor allele (LM) protein and synergized with the mutations G170R and I244T. Our findings indicate that phosphorylation of T9 may affect the conformation of the NTT-AGT and synergize with PH1-causing mutations to promote aggregation in a genotype-specific manner. Phosphorylation should be considered a novel regulatory mechanism in PH1 pathogenesis.

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