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A comprehensive in silico exploration of the impacts of missense variants on two different conformations of human pirin protein.
Khan, Auroni Semonti; Parvez, Nahid; Ahsan, Tamim; Shoily, Sabrina Samad; Sajib, Abu Ashfaqur.
  • Khan AS; Department of Genetic Engineering and Biotechnology, Jagannath University, Dhaka, 1100 Bangladesh.
  • Parvez N; Department of Genetic Engineering and Biotechnology, Jagannath University, Dhaka, 1100 Bangladesh.
  • Ahsan T; Molecular Biotechnology Division, National Institute of Biotechnology, Savar, Dhaka, 1349 Bangladesh.
  • Shoily SS; Department of Genetic Engineering and Biotechnology, University of Dhaka, Dhaka, 1000 Bangladesh.
  • Sajib AA; Department of Genetic Engineering and Biotechnology, University of Dhaka, Dhaka, 1000 Bangladesh.
Bull Natl Res Cent ; 46(1): 225, 2022.
Article in English | MEDLINE | ID: covidwho-1974172
ABSTRACT

Background:

Pirin, a member of the cupin superfamily, is an iron-binding non-heme protein. It acts as a coregulator of several transcription factors, especially the members of NFκB transcription factor family. Based on the redox state of its iron cofactor, it can assume two different conformations and thereby act as a redox sensor inside the nucleus. Previous studies suggested that pirin may be associated with cancer, inflammatory diseases as well as COVID-19 severities. Hence, it is important to explore the pathogenicity of its missense variants. In this study, we used a number of in silico tools to investigate the effects of missense variants of pirin on its structure, stability, metal cofactor binding affinity and interactions with partner proteins. In addition, we used protein dynamics simulation to elucidate the effects of selected variants on its dynamics. Furthermore, we calculated the frequencies of haplotypes containing pirin missense variants across five major super-populations (African, Admixed American, East Asian, European and South Asian).

Results:

Among a total of 153 missense variants of pirin, 45 were uniformly predicted to be pathogenic. Of these, seven variants can be considered for further experimental studies. Variants R59P and L116P were predicted to significantly destabilize and damage pirin structure, substantially reduce its affinity to its binding partners and alter pirin residue fluctuation profile via changing the flexibility of several key residues. Additionally, variants R59Q, F78V, G98D, V151D and L220P were found to impact pirin structure and function in multiple ways. As no haplotype was identified to be harboring more than one missense variant, further interrogation of the individual effects of these seven missense variants is highly recommended.

Conclusions:

Pirin is involved in the transcriptional regulation of several genes and can play an important role in inflammatory responses. The variants predicted to be pathogenic in this study may thus contribute to a better understanding of the underlying molecular mechanisms of various inflammatory diseases. Future studies should be focused on clarifying if any of these variants can be used as disease biomarkers. Supplementary Information The online version contains supplementary material available at 10.1186/s42269-022-00917-7.
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Full text: Available Collection: International databases Database: MEDLINE Type of study: Experimental Studies / Prognostic study Topics: Variants Language: English Journal: Bull Natl Res Cent Year: 2022 Document Type: Article

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Full text: Available Collection: International databases Database: MEDLINE Type of study: Experimental Studies / Prognostic study Topics: Variants Language: English Journal: Bull Natl Res Cent Year: 2022 Document Type: Article