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Aziz, U.

Publications and source records attributed to Aziz, U..

3 recordsLinked to original sources

Telomere Length as an Indicator of Lifestyle-Related Biological Aging in Hypertensive Adults: A Pilot Exploratory Study

BackgroundMultiple epidemiological studies have given a global perspective that hypertension leads to changes in telomere length (TL). This study aimed to investigate the association between leukocyte telomere length and lifestyle factors among individuals with hypertension, a family history of the disease and healthy controls. MethodsThis pilot exploratory cross-sectional study included 45 participants (n = 15 per group) divided into hypertensive, familial hypertensive, and control groups. Lifestyle behaviors were assessed using the FANTASTIC Lifestyle Checklist, evaluating domains such as physical activity, diet, sleep, and stress. Relative telomere length (T/S ratio) of leucocytes was measured from peripheral blood samples using quantitative real-time PCR (qPCR). Data were analyzed using SPSS software, with ANOVA, Kruskal-Wallis test, and multivariable linear regression applied for statistical analysis. ResultsRelative telomere length differed significantly among the study groups (p = 0.008), with hypertensive participants demonstrating the highest median telomere-to-single-copy gene (T/S) ratio (2.66), followed by familial hypertensive (1.25) and control participants (0.87). Total lifestyle scores also varied significantly across groups (p < 0.001), with hypertensive individuals exhibiting higher mean scores (77.07 {+/-} 5.59) than familial hypertensive (67.20 {+/-} 3.00) and control participants (67.07 {+/-} 5.97). A modest positive correlation was observed between total lifestyle score and relative telomere length (r = 0.329, p < 0.05), suggesting that healthier lifestyle behaviors in diagnosed hypertensive subjects following healthy lifestyles and regular medications were associated with longer telomeres. However, in multivariable linear regression analyses, lifestyle score, age, gender, hypertension status, and family history of hypertension were not independently associated with telomere length (all p > 0.05). ConclusionLifestyle scores were positively associated with telomeres, and significantly higher telomere ratios in hypertensive subjects suggest complex biological interactions that require further investigation through larger longitudinal studies in the target population.

Molecular Biology↗

The XenCart Protocol: A Method for Alcian Blue Labeling and Quantitative Analysis of Craniofacial Cartilage in Xenopus

Craniofacial birth defects, such as cleft lip and palate, are among the most common congenital anomalies and often arise from disruptions in early facial patterning. Many of these defects are linked to environmental teratogens, yet such exposures cannot be directly tested in humans, making animal models essential for evaluating developmental risks. Xenopus laevis offers a powerful solution: its tadpoles develop externally, share deeply conserved craniofacial patterning mechanisms with humans, and provide an accessible platform for uncovering how environmental exposures reshape facial structures during development. Here, we present the XenCart Protocol, a reproducible workflow for Alcian Blue staining and quantitative morphometric analysis of Xenopus craniofacial cartilage. This method provides clear visualization of individual cartilage elements and can be readily applied to investigate genetic or environmental perturbations. The Xenopus craniofacial skeleton contains distinct cartilaginous structures that perform key biomechanical functions and share strong homology with regions of the human craniofacial skeleton. These similarities allow direct comparison of developmental outcomes across vertebrates. As part of a CURE-based undergraduate course, the XenCart Protocol was used to measure jaw cartilage dimensions in tadpoles exposed to an emerging teratogen, e-liquids used in vaping. E-liquid exposure caused consistent reductions across major craniofacial cartilages, including shorter Meckels cartilage, narrowed infrarostral width, decreased basihyobranchial and ceratohyal dimensions, and reduced suprarostral angles, reflecting an overall shift toward a smaller, more compact craniofacial morphology. These patterns suggest potential disruption of neural crest cell migration or signaling pathways for craniofacial cartilage development, mechanisms that, if similarly affected in humans, could contribute to midfacial narrowing, jaw underdevelopment, or increased vulnerability to conditions such as orofacial clefts. The ability to detect robust, structure-specific differences highlights the sensitivity of the protocol and its strong alignment with student-led research. These findings also pinpoint the precise regions of the jaw most affected by e-liquid exposure, providing a foundation for uncovering the developmental mechanisms driving these craniofacial changes. In summary, the XenCart Protocol provides a standardized, scalable method for quantifying craniofacial cartilage development and offers a powerful platform for both mechanistic research and undergraduate training in developmental biology and toxicology.

developmental biology↗

Integrative metagenomics and structural bioinformatics identify explainable gut microbial variants associated with Crohns disease

Metagenomics has revealed disease-associated shifts in microbial taxa and functions in inflammatory bowel disease (IBD) patients. However, the role of genomic variation in gut commensals remains poorly understood. Here, we integrated metagenomic profiling, variant calling, and structural bioinformatics to identify disease-associated variants in the gut microbes. Crohns disease (CD) and ulcerative colitis (UC) showed significant negative associations with Bacteroides uniformis, Bacteroides vulgatus, and Eubacterium rectale. These bacteria exhibited 190,712 single-nucleotide polymorphisms, including 479 CD-specific and 235 UC-specific variants. Variant prioritization identified a CD-specific Val170Leu substitution in the conserved starch-binding domain of the Starch Utilization System D (SusD) protein in B. uniformis. Structural modeling and cyclodextrin docking indicated reduced binding affinity in the mutant, while 200-ns molecular dynamics simulations showed stable ligand retention only in the wild type. These findings suggest that impaired starch metabolism driven by SusD variation may contribute to B. uniformis depletion in CD and demonstrate the value of integrating metagenomics with structural analyses to identify functionally relevant microbial variants.

bioinformatics↗