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Bonne, I.

Publications and source records attributed to Bonne, I..

4 recordsLinked to original sources

Runx3 Acts as Homodimeric Chromatin Binding Factor Regulating Heterochromatin-Mediated Cancerous Phenotype

The recent paradoxical dual citizenships of Runt-related transcription factor 3 (Runx3) in tumorigenesis remains poorly characterized. Here, we report the oncogenic capacity of Runx3 as chromatin modulator in metastatic gastric cancer model. Runx3 exists as homodimer and binds cooperatively to modified nucleosomes. Additionally, we detected a synergistic functional enhancement of octamer transfer, nucleosome sliding and stochiometric integrity of SWI/SNF by Runx3. We found that Runx3 depletion increased nucleosomes occupancy and promoted chromatin silencing by heterochromatin condensation and HP1 oligomerization. ATAC-seq analysis revealed differential accessibility per chromosome due to Runx3 null expression with dysregulation of multiple inflammatory response and DNA repair pathways. Mechanistically, these modulations resulted in aberrant DNA damage repair response, which is rescued by RUNX3 overexpression. These findings reveal a new paradigm in Runx3 biology as dynamic chromatin regulatory element vital for the maintenances of cancerous phenotype. SignificanceTo the best of our knowledge, the present study is the first to explore the role of Runx3 as homodimeic chromatin binding factor and establishes its oncogenic-function as modulator of heterochromatin de-condensation and SWI/SNF chromatin remodeling activities. These emerging features of Runx3 at the epigenetic level imply a promising direction to screen for anti-Runx3 epigenetic drugs "Epi-drugs" in search of novel gastric cancer treatment.

cancer biology↗

Theca cell mechanics and tissue pressure regulate mammalian ovarian folliculogenesis

The maturation of functional eggs within the ovaries is essential for successful reproduction and organismal functions in mammals. Yet, despite its biological and clinical importance, the underlying mechanisms regulating folliculogenesis remain enigmatic. Here, we report a novel role of the surface-anchoring theca cells (TCs) in regulating follicle growth through mechanical signalling. Direct mechanical measurements reveal that these TCs are highly contractile and exert compressive stress to the follicular interior, potentially through active assembly of fibronectin scaffold around the follicles. Abolishing TC contractility disrupts fibronectin assembly, increases follicle size, and decreases intrafollicular pressure and viscosity. We further reveal that the granulosa cells (GCs) within the follicles exhibit spatial patterns of YAP signalling and proliferation, which appear to be decoupled. Transient manipulation of tissue pressure through bulk follicle compression, laser ablation or pharmacological perturbation of TC contractility leads to changes in GC YAP signalling, proliferation, and oocyte-GC communications, while long term abrogation of TC contractility leads to impaired follicle growth. Altogether, our study unveils the unique role of TC-mediated tissue pressure in ensuring robust mammalian ovarian folliculogenesis.

developmental biology↗

MFSD7c functions as a transporter of choline at the blood-brain barrier

Mutations of MFSD7c (also known as Flvcr2), which is an orphan transporter, are linked to Fowler syndrome 1, 2. Here, we use Mfsd7c knockout mice and cell-based assays to reveal that MFSD7c is a choline transporter at the blood-brain barrier (BBB). We performed comprehensive metabolomics and detected differential changes of metabolites in the brains and livers of Mfsd7c knockout (Mfsd7c-/-) embryos. Particularly, we found that choline-related metabolites were altered in the brains but not in the livers of Mfsd7c-/- embryos. Thus, we hypothesized that MFSD7c regulates the levels of choline in the brain. Indeed, expression of human MFSD7c in cells significantly increased choline uptake. Interestingly, we showed that choline uptake by MFSD7c is greatly increased by choline-metabolizing enzymes, leading us to demonstrate that MFSD7c is a facilitative transporter of choline. Furthermore, single-cell patch-clamp showed that the import of choline by MFSD7c is electrogenic. Choline transport function of MFSD7c is conserved in vertebrates, but not in yeasts. We show that human MFSD7c is a functional ortholog of HNM1, the yeast choline importer. Employing our transport assays, we showed that several missense mutations of human MFSD7c from Fowler patients had abolished or reduced choline transport activity. Mice lacking Mfsd7c in the CNS endothelial cells suppressed the import of exogenous choline from blood but unexpectedly had increased choline levels in the brain. Stable-isotope tracing study revealed that MFSD7c is required for exporting choline derived from lysophosphatidylcholine (LPC) in the brain. Collectively, our work identifies MFSD7c as a choline transporter at the BBB. This study suggests that defective export of choline in the brain may be a cause of Fowler syndrome.

biochemistry↗

The novel conserved NAD+ binding micropeptide SGHRT regulates mitochondrial function and metabolism in human cardiomyocytes

AbstractsNicotinamide adenine dinucleotide (NAD) is a critical metabolite and coenzyme for multiple metabolic pathways and cellular processes (1-4). In this study, we identified Singheart, SGHRT as a nuclear genome-encoded NAD+-binding mitochondrial micropeptide. SGHRT, present in both monomeric and dimeric forms, binds directly to NAD, but not NADH or flavin adenine dinucleotide (FAD). Localized to the inner mitochondrial membrane and mitochondrial matrix, SGHRT interacts with the mitochondrial enzymes Succinate-CoA Ligase and Succinate Dehydrogenase. SGHRT deletion in human embryonic stem cell derived cardiomyocytes disrupted mitochondria morphology, decreased total NAD and ATP abundance, and resulted in defective TCA cycle metabolism, the electron transport chain and in Ox-Phos processes. These results comprise the first report of an NAD+-binding micropeptide, SGHRT, required for mitochondrial function and metabolism.

cell biology↗