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Biology subjects

Ben-Dov, I. Z.

Publications and source records attributed to Ben-Dov, I. Z..

3 recordsLinked to original sources

The stress-induced lincRNA JUNI is a critical factor for cancer cell survival whose interactome is a prognostic signature in clear cell renal cell carcinoma

Cancer cells rely on adaptive mechanisms to survive the multiple stressors they encounter, including replication stress, toxic metabolic products and exposure to genotoxic drugs. Understanding the factors involved in these stress responses is crucial for developing effective treatments. Here, we describe a previously unstudied long non-coding RNA (lncRNA), JUNI (JUN-DT, LINC01135), which is regulated by MAPK and responsive to stress. JUNI positively regulates the expression of its neighboring gene JUN, a key transducer of signals that regulate multiple transcriptional outputs. Our findings reveal that silencing JUNI sensitizes cancer cells to chemotherapeutic drugs or UV radiation, and that its prolonged silencing leads to cell death regardless of stress exposure, highlighting the pro-survival importance of JUNI. We identified 57 proteins that interact with JUNI and found that the activity of one of them, the MAPK phosphatase and inhibitor DUSP14, is inhibited by JUNI. This effect results in c-Jun induction following exposure of cancer cells to UV radiation and promotes cellular survival. Although JUNI regulates c-Jun and its downstream targets, the pro-survival effects in cells not exposed to stress are only partially dependent on c-Jun regulation. JUNI expression levels significantly correlate with patients survival across 11 different types of cancer. Interestingly, the correlation of DUSP14 expression levels with patients survival in nine of these tumors is coherently inverse, indicating contradicting effects that are relevant not only for c-Jun induction and cellular survival but also in human cancer. Notably, we observed particularly significant antagonistic correlations in clear cell renal cell carcinoma (ccRCC) (p=5.7E-05 for JUNI and p=2.9E- 05 for Dusp14). In fact, the expression levels of 76% of JUNI-interacting proteins predict the prognosis of ccRCC patients significantly. Furthermore, a combined hazard ratio calculation demonstrates that this gene combination serves as a highly specific prognostic signature for ccRCC. Overall, our findings reveal a new important factor in stress signaling and cellular survival that is involved in ccRCC.

cell biology↗

Maintaining intact parathyroid glands throughout life requires Dicer and microRNA-mediated mTORC1 signaling

Secondary hyperparathyroidism (SHP) frequently accompanies chronic kidney disease (CKD), contributing to morbidity and mortality in patients. Our previous findings demonstrated that PT-Dicer-/- mice, with parathyroid specific deletion of Dicer and consequently microRNA, maintained normal serum PTH levels but failed to increase serum PTH in response to the major inducers of PTH secretion, hypocalcemia and CKD. Additionally, we elucidated a critical role of mTORC1 in CKD-induced SHP. We now explored the roles of Dicer and mTORC1 in parathyroid development and function. Despite sustaining normal serum PTH levels, PT-Dicer-/- mice displayed apoptotic loss of intact parathyroid glands postnatally, which were replaced by scattered cell clusters, and reduced mTORC1 activity. PT-mTORC1-/- mice exhibited the absence of intact parathyroid glands, while retaining normal serum PTH levels, mirroring the characteristics of PT-Dicer-/- mice. Conversely, PT-Tsc1-/-mice with hyperactivated mTORC1 exhibited enlarged glands and elevated serum PTH and calcium levels. Significantly, PT-Dicer-/-;Tsc1-/- double knockout mice demonstrated a reversal of the aparathyroidism of PT-Dicer-/- mice, preserving intact parathyroid glands and reinstating CKD-induced SHP. Lastly, data collected from a network of 106 healthcare organizations demonstrated that drug-induced mTOR inhibition is associated with reduced elevation of serum PTH levels in kidney transplant recipients. The latter findings offer physiological validation for our observations in genetically modified mouse models, highlighting the central role of mTORC1 signaling in CKD-SHP. Altogether, our results indicate that mTOR operates downstream of Dicer and miRNA. Consequently, Dicer, miRNA and mTORC1 collectively play a crucial role in maintaining the postnatal integrity and function of the parathyroid glands.

developmental biology↗

Chronic kidney disease alters Pin1 phosphorylation and parathyroid hormone mRNA binding proteins leading to secondary hyperparathyroidism

Parathyroid hormone (PTH) regulates calcium metabolism and bone strength. Chronic kidney disease leads to secondary hyperparathyroidism (SHP) which increases morbidity and mortality. In experimental SHP, the increased PTH gene expression is due to enhanced PTH mRNA stability, mediated by changes in its interaction with stabilizing AUF1 and destabilizing KSRP. Pin1 isomerizes target proteins and leads to KSRP dephosphorylation. In SHP, Pin1 isomerase activity is decreased and phosphorylated KSRP fails to bind PTH mRNA, resulting in high PTH mRNA stability and levels. However, the up- and down-stream mechanisms by which kidney failure stimulates the parathyroid remain elusive. We now reveal a pathway where kidney failure induces parathyroid Pin1 phosphorylation, linking Pin1, KSRP and PTH mRNA stability as key players for the high PTH expression in SHP. We identified by mass-spectrometry, changes in rat parathyroid proteome and phosphoproteome profiles induced by impaired renal function, including KSRP phosphorylation at Pin1 target sites. Furthermore, both acute and chronic kidney failure led to parathyroid-specific Pin1 Ser16 and Ser71 phosphorylation, which disrupts Pin1 activity. Accordingly, pharmacologic Pin1 inhibition, that mimics the decreased Pin1 activity in SHP, increased PTH expression ex-vivo in parathyroid organ cultures and in transfected cells, through the PTH mRNA protein-interacting element and KSRP phosphorylation at potential Pin1-binding motifs. Therefore, kidney failure leads to loss of parathyroid Pin1 activity by inducing Pin1 phosphorylation. This predisposes parathyroids to increase PTH production through impaired PTH mRNA decay that is dependent on KSRP phosphorylation. Pin1 and KSRP phosphorylation and the Pin1-KSRP-PTH mRNA axis thus drive SHP.

molecular biology↗