bioRxiv Science⌕ Search

Biology subjects

Sakon, D.

Publications and source records attributed to Sakon, D..

3 recordsLinked to original sources

Prohaptoglobin Promotes Pancreatic Cancer Progression by sustaining YAP Activity

Background & AimsProhaptoglobin (proHp), a precursor of haptoglobin (Hp), has recently emerged as a cancer-associated biomarker, but its functional role in pancreatic cancer remains unclear. We investigated whether proHp promotes malignant phenotypes of pancreatic cancer and explored signaling pathways involved. MethodsSerum proHp was examined in patients with pancreatic cancer and healthy controls. HP expression in pancreatic tumors and cell lines was analyzed using transcriptomic datasets. ProHp function was evaluated using PSN1 HP knockout (HPKO) cells, exogenous proHp supplementation, xenograft models, and RNA sequencing of PSN1 wild-type and HPKO cells. YAP activity was assessed by target gene expression, subcellular localization, YAP overexpression, and inhibition of YAP-TEAD interaction. ResultsSerum proHp was significantly elevated in patients with pancreatic cancer, and a subset of tumors and pancreatic cancer cell lines showed HP expression comparable to liver, indicating a tumor-derived source of proHp. In PSN1 cells, HPKO reduced motility, whereas exogenous proHp partially rescued this defect and enhanced motility in additional pancreatic cancer cell lines. Wild-type PSN1 cells continued to proliferate beyond confluence and formed rapidly growing xenograft tumors, which were abolished in HPKO cells. At high density, wild-type cells maintained YAP-related gene expression and nuclear YAP despite Hippo activation, whereas HPKO exhibited reduced nuclear YAP, indicating noncanonical YAP regulation by proHp. YAP restoration in HPKO cells rescued high-density proliferation and cell motility, while a YAP-TEAD inhibitor selectively reduced high-density proliferation of wild-type but not HPKO cells. ConclusionProHp promotes pancreatic cancer progression in a context-dependent manner by sustaining YAP activity and enabling cells to partially overcome contact-dependent growth inhibition. SynopsisProhaptoglobin, a precursor of haptoglobin, is elevated in pancreatic cancer and produced by tumor cells. It promotes cell motility, supports tumor growth under high-density conditions, and maintains YAP-dependent transcription that overrides contact-dependent growth inhibition. What You Need to Know BackgroundProhaptoglobin, a precursor of haptoglobin, is elevated in pancreatic cancer, but its tumor-derived origin and functional role are unknown. We examined whether prohaptoglobin drives progression by sustaining YAP signaling. ImpactWe show that tumor-derived prohaptoglobin sustains nuclear YAP activity, allowing pancreatic cancer cells to bypass contact inhibition and proliferate, revealing prohaptoglobin as a context-dependent driver rather than a passive biomarker. Future DirectionsDefining how prohaptoglobin engages upstream Hippo-YAP regulators and whether prohaptoglobin-YAP signaling is targetable in vivo may uncover new biomarkers and therapeutic vulnerabilities for pancreatic cancer.

cancer biology↗

Enterococcus faecalis is involved in the progression of the early stages of latent chronic pancreatitis surrounding pancreatic cancer tissue

(Objective) In our previous research, we identified latent chronic pancreatitis in the normal tissue surrounding pancreatic cancer. We also discovered the presence of Enterococcus faecalis (E. faecalis), a type of intestinal bacterium, in the pancreatic fluid and tissue of pancreatic cancer patients, suggesting it may be one of the factors contributing to the development of latent chronic pancreatitis. In this study, we performed pathological analyses to investigate its characteristics and investigate a possibility of E. faecalis infection. (Methods) Pathological analyses were performed, using 16 cases of pancreatic cancer and intraductal papillary mucinous neoplasia (IPMN) involving lesions in the pancreas tail. The involvement of E. faecalis was investigated with immunohistochemical analysis and serological methods. (Results) All cases exhibited inflammatory changes in pancreatic tissue without a clinical diagnosis of chronic pancreatitis, along with macrophage infiltration. These changes did not significantly differ according to preoperative treatment. DNA encoding E. faecalis 16s ribosomal RNA was detected in many cases, however, a positive immunostaining to E. faecalis was observed in only a few cases. Serum capsular polysaccharide (CPS) antibody levels exceeding the mean values were observed in patients with established chronic pancreatitis, while the level was not correlated with E. faecalis immunostaining. (Conclusion) These results suggest the E. faecalis infection is involved in the early stage of the progression of chronic latent pancreatitis and the diagnostic technology incorporating novel multi-biomarkers may be useful for identifying high-risk individuals for future pancreatic cancer development.

cancer biology↗

Functional Impact of Glycosylation and Splicing Variants of LRIG1 on EGFR Proteostasis in Cancer

LRIG1, a membrane glycoprotein, has emerged as a significant stem cell marker and negative regulator of receptor tyrosine kinases (RTKs), including EGFR. Glycosylation is a major post-translational modification, which plays a crucial role in protein function and stability. In cancer biology, abnormal glycosylation can serve as a biomarker and contribute to pathogenesis. We aimed to investigate the effects of glycosylation on LRIG1 functions. Through database analysis and experimental approaches, we focused on evolutionarily conserved glycosylation sites of LRIG1, particularly N74 in humans. We found that a mutation of the N74 glycosylation site (N74Q) enhances LRIG1s binding to EGFR and promotes EGFR degradation. Furthermore, we identified a naturally occurring splice variant of LRIG1 lacking exon 2, which includes the N74 site, that shows similar enhanced EGFR binding and degradation. Analysis of TCGA data revealed that exon 2 skipping in LRIG1 occurs in various cancers, with higher levels correlating with poorer survival in breast and ovarian cancers. Our findings suggest that the absence of glycosylation at N74 enhances LRIG1-EGFR binding, providing an example of glycosylation negatively regulating protein-protein interaction. This mechanism, achieved through alternative splicing, provides insights into the importance of glycosylation deficiency in cancer biology.

biochemistry↗