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Biomedical subjects

Prince Amoah Barnie

Publications and source records attributed to Prince Amoah Barnie.

2 recordsLinked to original sources

CD4+T cell metabolic reprogramming as therapeutic targets in neurodegenerative diseases.

Neurodegenerative diseases are a group of disorders characterized by the progressive loss of structure and function of neurons in the brain and/or peripheral nervous system. The main pathological feature of neurodegenerative disease in the central nervous system (CNS) is the selective neuronal loss in the brain and spinal cord, leading to cognitive and/or motor dysfunction. The immune system plays a variety of roles in the pathophysiology of neurodegenerative diseases. CD4+T cells are being recognized as important immunometabolic modulators in the pathophysiology of neurodegenerative disorders (ND), including multiple sclerosis (MS), Parkinson's disease (PD), and Alzheimer's disease (AD). Their varied metabolic patterns provide a special therapeutic window for regulating neuroinflammation, spanning from lipid-dependent regulatory T cells (Tregs) to glycolysis-driven pro-inflammatory subsets (Th1, Th17). Abnormal immune metabolism raises the risk of oxidative stress, mitochondrial malfunction, and neuronal death in neurodegenerative environments. According to recent research, altering CD4 T cell metabolism to favour oxidative phosphorylation (OXPHOS) and fatty acid oxidation (FAO) may help Treg function return and inhibit harmful effector responses. Current research on CD4 T cell immunometabolic pathways, their interactions with CNS-resident cells, and the developing possibility of metabolic intervention to slow neurodegeneration is explained in this review. By examining important signaling pathways including AMPK, mTORC1, and ROS dynamics, we demonstrate how CD4+T cell metabolism may reshape ND treatment approaches.

Humans

Expression patterns of plasma microRNAs in patients with cervical cancer from two teaching hospitals in Ghana.

AIM: Early cervical cancer diagnosis is a global challenge that needs to be addressed by the discovery of less invasive diagnostic and prognostic approaches. Circulating miRNAs are stable in plasma and their diagnostic potentials have been elucidated in some cancers. Therefore, in this cross-sectional study, we determined the patterns of expression of 7 selected circulating microRNAs that differ between patients with cervical cancer receiving therapy, patients with cervical not on therapy and healthy females. The goal was to investigate the diagnostic and prognostic potential of these selected miRNAs. METHODS: Total RNA was extracted from plasma samples collected from 53 participants recruited from Komfo Anokye Teaching Hospital and the Cape Coast Teaching Hospital, Ghana. Complementary DNA (cDNA) synthesis was performed, followed by quantitative polymerase chain reaction (qPCR) to amplify and quantify the expression levels of the target microRNAs. Expression levels of seven microRNAs-hsa-miR-146a, hsa-miR-29a, hsa-miR-29b, hsa-miR-34a, hsa-miR-233, hsa-miR-155, and hsa-miR-27a were compared among three groups: healthy controls (n = 27), patients with cervical cancer on therapy (n = 13), and those not on therapy (n = 13). RESULTS: miR-155 and miR-27a showed statistically significant differential expression between cancer patients and healthy controls. In addition, miR-29b expression levels differed significantly between stage 4b and stage 4a of patient with cervical cancer undergoing treatment. CONCLUSION: These findings suggest that circulating plasma miRNAs may serve as non-invasive biomarkers for the early detection of cervical cancer, monitoring disease progression, and evaluating treatment response.

Humans