PRSS37 deficiency leads to impaired energy metabolism in testis and sperm revealed by DIA-based quantitative proteomic analysis.
Wenfeng XiongHaoyang GeChunling ShenChaojie LiXiaohong ZhangLingyun TangYan ShenShunyuan LuHongxin ZhangZhu-Gang WangPublished in: Reproductive sciences (Thousand Oaks, Calif.) (2022)
Our previous studies have reported that a putative trypsin-like serine protease, PRSS37, is exclusively expressed in testicular germ cells during late spermatogenesis and essential for sperm migration from the uterus into the oviduct and sperm-egg recognition via mediating the interaction between PDILT and ADAM3. In the present study, the global proteome profiles of wild-type (wt) and Prss37 -/- mice in testis and sperm were compared employing data independent acquisition (DIA) technology. Overall, 2506 and 459 differentially expressed proteins (DEPs) were identified in Prss37-null testis and sperm, respectively, when compared to control groups. Bioinformatic analyses revealed that most of DEPs were related to energy metabolism. Of note, the DEPs associated with pathways for the catabolism such as glucose via glycolysis, fatty acids via β-oxidation, and amino acids via oxidative deamination were significantly down-regulated. Meanwhile, the DEPs involved in the tricarboxylic acid cycle (TCA cycle) and oxidative phosphorylation (OXPHOS) were remarkably decreased. The DIA data were further confirmed by a markedly reduction of intermediate metabolites (citrate and fumarate) in TCA cycle and terminal metabolite (ATP) in OXPHOS system after disruption of PRSS37. These outcomes not only provide a more comprehensive understanding of the male fertility of energy metabolism modulated by PRSS37 but also furnish a dynamic proteomic resource for further reproductive biology studies.
Keyphrases
- wild type
- germ cell
- fatty acid
- induced apoptosis
- electronic health record
- big data
- high resolution
- machine learning
- type diabetes
- young adults
- nitric oxide
- blood pressure
- ms ms
- metabolic syndrome
- cell proliferation
- signaling pathway
- cell death
- artificial intelligence
- skeletal muscle
- oxidative stress
- insulin resistance
- blood glucose
- pi k akt