Gender-related aneuploidy produces distinct phenotypic abnormalities in humans
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Peer-reviewed clinical research demonstrates that sex chromosome aneuploidies, such as Klinefelter and Turner syndromes, are associated with distinct phenotypic abnormalities and clinical complications in humans.
In humans, the X and Y chromosomes determine the biological sex, XX specifying for females and XY for males. The long noncoding RNA X-inactive specific transcript (lncRNA XIST) plays a crucial role in the process of X chromosome inactivation (XCI) in cells of the female, a process that ensures the balanced expression of X-linked genes between sexes. Initially, it was believed that XIST can be expressed only from the inactive X chromosome (Xi) and is considered a typically female-specific transcript. However, accumulating evidence suggests that XIST can be detected in male cells as well, and it participates in the development of cancers and other human diseases by regulating gene expression at epigenetic, chromatin remodeling, transcriptional, and translational levels. XIST is abnormally expressed in many sexually dimorphic diseases, including autoimmune and neurological diseases, pulmonary arterial hypertension (PAH), and some types of cancers. However, the underlying mechanisms are not fully understood. Escape from XCI and skewed XCI also contributes to sex-biased diseases and their severity. Interestingly, in humans, similar to experimental animal models of human disease, the males with the XIST gene activated display the sex-biased disease condition at a rate close to females, and significantly greater than males who had not been genetically modified. For instance, the men with supernumerary X chromosomes, such as men with Klinefelter syndrome (47, XXY), are predisposed toward autoimmunity similar to females (46, XX), and have increased risk for strongly female biased diseases, compared to 46, XY males. Interestingly, chromosome X content has been linked to a longer life span, and the presence of two chromosome X contributes to increased longevity regardless of the hormonal status. In this review, we summarize recent knowledge about XIST structure/function correlation and involvement in human disease with focus on XIST abnormal expression in males. Many human diseases show differences between males and females in penetrance, presentation, progression, and survival. In humans, the X and Y sex chromosomes determine the biological sex, XX specifying for females and XY for males. This numeric imbalance, two X chromosomes in females and only one in males, known as sex chromosome dosage inequality, is corrected in the first days of embryonic development by inactivating one of the X chromosomes in females. While this "dosage compensation" should in theory solve the difference in the number of genes between sexes, the expressed doses of X genes are incompletely compensated by X chromosome inactivation in females. In this review we try to highlight how abnormal expression and function of XIST, a gene on the X chromosome responsible for this inactivation process, may explain the sex differences in human health and disease. A better understanding of the molecular mechanisms of XIST participation in the male-female differences in disease is highly relevant since it would allow for improving the personalization of diagnosis and sex-specific treatment of patients.
<h4>Background</h4>Klinefelter Syndrome (KS) and Turner Syndrome (TS) are the two most common sex chromosome aneuploidies (SCAs). This study aims to investigate genotype-phenotype correlations of SCAs including classic, rare variants, and mosaic cases of KS and TS.<h4>Methods</h4>To understand the relationship between genotype and phenotype (i.e., clinical findings) in SCAs, retrospective cytogenetic and clinical data was collected for KS (n = 57) and TS (n = 92) cases from 2013 to 2022. The cohorts of KS and TS were divided into three subcategories (classic, mosaic, variant/other) based on the genotype.<h4>Results</h4>The other supernumerary SCA (sSCA) group within the KS cohort had a significantly higher rate of developmental delay when compared to other KS groups. Although tall stature, pubertal delay, and congenital heart defects were described in the KS classic and other sSCA cohorts, these phenotypes were not seen in KS mosaics. Within the TS variant cohort, phenotype severity (i.e., number of accumulated pathologic clinical findings) was related to the complexity of the structural abnormality of X chromosomes.<h4>Conclusion</h4>Our study highlights that the SCA genotype (classic, mosaic, variant/other) modulates expression of the phenotype. Analysis of larger datasets may provide a deeper understanding leading to enhanced care management and improved patient outcomes.
BACKGROUND: Sex chromosome aneuploidies (SCAs) are collectively common genetic disorders that impact diverse body systems. The molecular mechanisms by which an extra or missing sex chromosome increases clinical risk are not fully understood, but they likely involve imbalances in expression and regulation of dosage-sensitive genes. There has been a recent surge in transcriptomic and epigenomic studies on genomic effects of SCAs - making it an opportune time to: (i) map existing knowledge of SCA impacts on gene expression and regulation; (ii) resolve consensus findings on SCA dosage-sensitive genes; and (iii) define gaps and high priority areas for future research. METHODS: Following the Preferred Reporting Items for Systematic Reviews and Meta-Analyses (PRISMA) guidelines (protocol registered on the international Prospective Register of Systematic Reviews PROSPERO CRD42024473984), we searched nine databases and screened the titles and abstracts of 2421 records, thoroughly evaluated 161 full-text articles, and identified 57 eligible studies for abstraction of methodological features and results. RESULTS: Our review spans 18 years of research and encompasses samples from 930 individuals with SCAs and 2192 euploidic controls. The recent acceleration in publication rates outstrips that for biomedical research as a whole. Studies have only recently started to diversify away from the most studied SCAs (47,XXY and 45,X karyotypes), tissue types (blood-derived, gonadal) and measurement methods (transcriptomic analysis by RNAseq). We identify a core set of dosage-sensitive genes that are recurrently impacted by SCAs across multiple tissues. These genes concentrate in 3 protein-protein interaction networks that are predominantly enriched for chromatin remodelling, and represent candidate drivers of downstream phenotypes. CONCLUSIONS: This systematic review of SCA impacts on the human genome helps to target the future research efforts that are now needed to (i) address existing knowledge gaps by diversifying the karyotypes, tissues and genomic features analyzed, and (ii) test the causal role for recurrently dysregulated genes. Meeting these goals would provide a molecular foundation to drive both basic and clinical understanding of sex chromosome influences on human phenotypic variation.
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