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Biology subjects

Cherif, H.

Publications and source records attributed to Cherif, H..

5 recordsLinked to original sources

A Standardized In Vitro Platform for Senolytic Drug Discovery in Human Musculoskeletal Cells

Cellular senescence contributes to the progression of many age related musculoskeletal diseases. Cellular senescence is a biological state that arises from replicative exhaustion and various cellular stressors, including elevated oxidative stress, mitochondrial dysfunction, mechanical overload, and chronic exposure to pro-inflammatory cytokines and proteases. Although senolytic agents show promise for eliminating senescent cells, their translation has been hindered by the lack of physiologically relevant and scalable in vitro screening methods. In the present study, we developed a standardized, physiologically relevant senescence-induction model and validated a metabolic activity assay as a rapid, scalable method for screening senolytic compounds. We used primary human intervertebral disc cells (IVD) as an example, but the workflow applies to many other cell types. To mimic inflammatory and oxidative stress, we used a combination of TLR-2 activation (Pam2CSK4) and tert-butyl hydroperoxide (tBHP), a potent ROS generator. Senescence induction was validated by quantifying {beta}-galactosidase fluorescence intensity, {beta}-gal enzymatic activity, and the expression of the p16 senescence marker across 3 IVD cell types: nucleus pulposus (NP), inner annulus fibrosus (iAF), and outer annulus fibrosus (oAF) cells. The combined Pam2CSK4 + tBHP exposure generated a robust senescent phenotype across all 3 IVD cell types, with oAF cells exhibiting the strongest increases in {beta}-gal fluorescence, {beta}-gal enzymatic activity, and p16 expression. We then used oAF cells to evaluate if the metabolic activity assay (Alamar Blue) could be used to determine both cytotoxicity of senolytic drugs in non-senescent cells and senolytic activity in a mixed population of senescent and non-senescent cells. We validate the method by comparing metabolic activity results with {beta}-gal enzymatic activity and p16 expression in induced and noninduced cells following exposure to three known senolytics (o-Vanillin, RG-7112, and ABT-199). The metabolic activity assay reliably identified a therapeutic window in which the three senolytics were non-toxic to non-senescent cells while selectively reducing metabolic activity in a mixed population of senescent and non-senescent cells. The reductions in metabolic activity in the mixed population correlated with decreases in SA {beta}-gal enzymatic activity and p16 expression, validating metabolic activity as a sensitive and scalable senolytic readout.

cell biology↗

Senolytic Therapy as a Preventive Strategy for Low Back Pain

Cell senescence drives inflammation and tissue breakdown and is a key hallmark of aging. Low back pain is strongly linked to age-related degeneration of spine tissues, and with an accumulation of senescent. Here we show that preventive administration of the senolytic agents o-vanillin and RG-7112 prevent the development of pain-related behaviour in young sparc-/- mice. Treated mice exhibit a reduction of senescence markers in the intervertebral discs, vertebral endplates, vertebral bone, and spinal cord, alongside a dampening of pro-inflammatory senescence-associated secretory factors in these tissues. This early senolytic intervention also preserves intervertebral disc volume and vertebral bone microarchitecture, indicating protection against structural degeneration of the spine. These findings demonstrate that targeting cellular senescence at an early stage can mitigate degenerative changes and pain, supporting senolytic therapy as a promising preventive strategy for musculoskeletal decline.

cell biology↗

Beyond miRNA cargo profiles: anti-inflammatory roles of extracellular vesicle-enriched miRNAs derived from human intervertebral disc cells unveiled by functional testing

Intervertebral disc (IVD) degeneration is a leading cause of chronic low back pain and a major contributor to global disability. Understanding the molecular mechanisms underlying this condition is essential for developing targeted therapies. Among these mechanisms, microRNAs (miRNAs) have emerged as critical post-transcriptional regulators of gene expression in IVD cells, influencing key processes such as extracellular matrix (ECM) homeostasis, inflammatory signalling, and cellular senescence. Extracellular vesicles (EVs), which transport miRNAs between cells, represent a promising avenue for therapeutic intervention. However, the composition of their miRNA cargo across different stages of disc degeneration remains inadequately characterized. We isolated EVs from primary human IVD cells derived from non-degenerate, mildly-degenerate, and severely degenerate tissues, and performed small RNA sequencing to profile their miRNA content. Bioinformatic analyses revealed enrichment in pathways related to ECM-receptor interaction, focal adhesion, inflammation, and cell cycle regulation. Notably, let-7b-5p and miR-100-5p were among the most abundant miRNAs and were significantly lower in EVs from degenerate discs. Functional assays demonstrated that transfection of IVD cells with let-7b-5p or miR-100-5p mimics individually suppressed IL-1{beta} expression at both mRNA and protein levels, confirming their anti-inflammatory roles. Strikingly, co-delivery of both miRNAs enhanced suppression of pro-inflammatory mediators, reduced senescence-associated p16 expression, and upregulated TIE2 mRNA, indicating synergistic effects in promoting a regenerative cell phenotype. These findings highlight the regulatory roles of EV-enriched let-7b-5p and miR-100-5p in modulating inflammation and senescence in IVD cells, and underscore the potential of miRNA-loaded EVs as cell-free regenerative therapies for disc degeneration.

cell biology↗

Senolytic Treatment for Low Back Pain.

Senescent cells (SnCs) accumulate due to aging and external cellular stress throughout the body. They adopt a senescence-associated secretory phenotype (SASP) and release inflammatory, and degenerative factors that actively contribute to age-related diseases such as low back pain (LBP). The senolytics, o-Vanillin and RG-7112, remove senescent human intervertebral (IVD) cells and reduce SASP release, but it is not known if they can treat LBP. sparc-/- mice, with LBP, were treated orally with o-Vanillin and RG-7112 as single or combination treatments. Treatment reduced LBP and SASP factor release and removed SnCs from the IVD and spinal cord. Treatment also lowered degeneration score in the IVDs, improved vertebral bone quality, and reduced the expression of pain markers in the spinal cord. The result indicates that RG-7112 and o-Vanillin with the combination treatment providing the strongest effect are potential disease-modifying drugs for LBP and other painful disorders where cell senescence is implicated. One Sentence Summary: Senolytics drugs can reduce back pain

cell biology↗

Metataxonomic analysis of halophilic archaea community in two geothermal springs sources in southern Tunisian Sahara

In this study, we assess the phylogenetic diversity of the halophilic archaeal community of biotechnological interest that inhabit in geothermal water in southern Tunisia. These waters are usually used for farming purposes, particularly for irrigation of the oases and greenhouses, due to the limited availability of surface freshwater resources and the arid climate. The samples processed from two separated geothermal sources in southern Tunisia based on the Illumina Miseq sequencing approach. Three samples including water, sediment, and halite-soil crust, were collected from downstream of two geothermal springs of Ksar Ghilane (KGH) and Zaouet Al Aness (ZAN) oases. Results showed that several haloarchaea-related members were identified in geothermal springs. The average taxonomic composition showed that 20 genera out of 33 were shared between the two geothermal sources with uneven distribution, where the Halogranum genus is the most represented genus with an abundance of 18.9% and 11.58% for ZAW and KGH, respectively. Several unique site-specific genera were also observed; the case of Halonotius, Halopelagius, Natronorubrum, and Haloarcula in ZAN, and Haloprofundus, Halomarina, Halovivax, Haloplanus, Natrinema, Halobium, Natronoarchaeum, Haloterrigena detected in KGH pool. We noticed that the majority of genus members are usually found in low-salinity ecosystems. The finding of this study suggests that haloarchaea-related members could survive in downstream geothermal sources, which may have resulted from the leaching of salts and minerals through drilling waters creating chemically complex saline systems.

microbiology↗