Novel Loss-of-Function Mutations in DNAH1 Displayed Different Phenotypic Spectrum in Humans and Mice

Ranjha Khan1, Qumar Zaman1, Jing Chen1

  • 1First Affiliated Hospital of University of Science and Technology of China (USTC), Hefei National Laboratory for Physical Sciences at Microscale, School of Basic Medical Sciences, Division of Life Sciences and Medicine, Chinese Academy of Sciences (CAS) Center for Excellence in Molecular Cell Science, University of Science and Technology of China, Hefei, China.

Insights

Novel DNAH1 gene mutations cause multiple morphological abnormalities of sperm flagella (MMAF) in infertile men. Mouse models reveal inconsistencies in DNAH1 function, offering insights into male infertility mechanisms.

Area of Science:

  • Human Genetics
  • Reproductive Biology
  • Molecular Medicine

Background:

  • Male infertility affects millions globally, with idiopathic sperm abnormalities like multiple morphological abnormalities of sperm flagella (MMAF) comprising a significant portion.
  • While DNAH1 gene mutations are linked to MMAF, the precise pathogenic mechanisms remain largely unexplored, particularly concerning variations between species.

Purpose of the Study:

  • To investigate the genetic and ultrastructural basis of MMAF in Pakistani families.
  • To explore the functional impact of novel DNAH1 mutations using mouse models and reconcile species-specific phenotypic differences.

Main Methods:

  • Transmission electron microscopy and SPAG6 staining were used to analyze sperm ultrastructure in affected individuals.
  • Whole-exome sequencing (WES) identified causative DNAH1 gene mutations.
  • Dnah1 mutant mice were generated to study in vivo effects and compare with human phenotypes.

Main Results:

  • Two novel, recessive DNAH1 mutations co-segregated with the MMAF phenotype in Pakistani families, associated with central pair defects in sperm.
  • Dnah1 mutant mice exhibited the MMAF phenotype but lacked significant ultrastructural defects.
  • The presence of DNAH1 isoform2 in mutant mice suggested a compensatory mechanism for maintaining sperm ultrastructure.

Conclusions:

  • This study identifies new DNAH1 mutations causing MMAF and provides the first explanation for discrepancies between human and mouse DNAH1 mutant phenotypes.
  • Findings advance the understanding of MMAF's pathophysiology and the complex role of DNAH1 in male fertility.