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Genetic and biochemical characterization of some missense mutations in the lacZ gene of Escherichia coli K-12.

Some preparations of beta-galactosidase from strains of Escherichia coli carrying point mutations in their lacZ genes did not precipitate with antibody as effectively as wild-type enzyme, but did not appear to be chain-terminating mutations as judged by polarity measurements and suppression. Sodium dodecyl sulfate-polyacrylamide gel electrophoresis of crude extracts of induced Lac+ strains revealed that the monomer of beta-galactosidase ran as a band uncontaminated by other cellular proteins. This method was used to identify missense mutations in the alpha and beta portions of the lacZ gene. Six of 13 mutations investigated were judged to be missense by this criterion. Measurement of the degree of polarity, the ability to complement a nonsense mutation at the operator-distal extremity of the gene (omega-complementation), and suppressibility by 12 nonsense suppressors allowed the assignment of six other mutations as either number or ochre. The protein figments produced by these six nonsense mutations appeared to be degraded in vivo. One mutation that could not be classified was either a missense mutation whose protein product was degraded or a very leak nonsense mutation. Two lacZ alleles were suppressed by the ochre suppressors supM and supN, although they were missense by other criteria. The ability of supM to suppress both nonsense and missense mutations can be explained if it is derived from a tyrosine transfer ribonucleic acid with a modified base in the first position of the anticodon. The mutations assigned to the missense class were not suppressed by the missense suppressors supH, supQ, glyV, glyU, or glyT. Our results suggest that the criteria used in the past to distinguish between nonsense and missense mutations may not be conclusive even when used together.

Antigens, Bacterial

Genetic evidence for predisposition to acute leukemias due to a missense mutation (p.Ser518Arg) in ZAP70 kinase: a case-control study.

BACKGROUND: The apparent lack of additional missense mutations data on mixed-phenotype leukemia is noteworthy. Single amino acid substitution by these non-synonymous single nucleotide variations can be related to many pathological conditions and may influence susceptibility to disease. This case-control study aimed to unravel whether the ZAP70 missense variant (rs104893674 (C > A)) underpinning mixed-phenotype leukemia. METHODS: The rs104893674 was genotyped in clients who were mixed-phenotype acute leukemia-, acute lymphoblastic leukemia- and acute myeloid leukemia-positive and matched healthy controls, which have been referred to all major urban hospitals from multiple provinces of country- wide, IRAN, from February 11' 2019 to June 10' 2023, by amplification refractory mutation system-polymerase chain reaction method. Direct sequencing for rs104893674 of the ZAP70 gene was performed in a 3130 Genetic Analyzer. RESULTS: We found that the AC genotype of individuals with A allele at this polymorphic site (heterozygous variant-type) contribute to the genetic susceptibility to acute leukemia of both forms, acute myeloid leukemia and acute lymphoblastic leukemia as well as with a mixed phenotype. In other words, the ZAP70 missense variant (rs104893674 (C > A)) increases susceptibility of distinct cell populations of different (myeloid and lymphoid) lineages to exhibiting cancer phenotype. The results were all consistent with genotype data obtained using a direct DNA sequencing technique. CONCLUSION: Of special interest are pathogenic missense mutations, since they generate variants that cause specific molecular phenotypes through protein destabilization. Overall, we discovered that the rs104893674 (C > A) variant chance in causing mixed-phenotype leukemia is relatively high.

Humans

Lung Squamous Cell Carcinoma Harbouring a Novel PAX8::PPARγ Fusion and a FGFR2 Exon 7 Missense Mutation.

Comprehensive molecular profiling is now routinely performed in newly diagnosed non-small cell lung carcinomas (NSCLCs) to identify actionable genomic alterations. Although numerous molecular abnormalities have been described in lung carcinomas, rare and unexpected gene fusions may create significant diagnostic challenges, particularly when they are characteristically associated with tumours of different lineages. To our knowledge, this is the first reported case of a primary lung squamous cell carcinoma harbouring an in-frame PAX8::PPARγ fusion with a concurrent FGFR2 exon 7 missense mutation (p.W290C). An 80-year-old man with a smoking history exceeding 50 years presented with a rapidly enlarging PET-avid right upper lobe pulmonary mass. Bronchial brushing cytology demonstrated a hypercellular malignant neoplasm composed of pleomorphic squamoid cells with hyperchromatic nuclei, dense cytoplasm and extensive necrosis. Cell block material showed squamous morphology and diffuse p40 positivity, supporting squamous differentiation. Reflex next-generation sequencing identified an FGFR2 exon 7 missense mutation (p.W290C; c.870G>C) and targeted RNA fusion analysis demonstrated an in-frame PAX8::PPARγ fusion resulting from a t(2;3)(q13;p25.2) translocation. Because PAX8::PPARγ rearrangements are strongly associated with follicular thyroid neoplasms, extensive clinicoradiologic and immunohistochemical correlation was performed to exclude metastatic thyroid carcinoma. Imaging studies showed no thyroid lesion or residual thyroid tissue, and tumour cells were negative for thyroglobulin, TTF-1 and PAX8. Correlation of the clinical history, radiologic findings, cytomorphology, immunophenotype and molecular profile supported the diagnosis of primary lung squamous cell carcinoma. This case expands the molecular spectrum of lung squamous cell carcinoma and highlights the importance of integrated cytopathologic, immunohistochemical, molecular and radiologic evaluation when unexpected gene fusions are identified in cytology specimens.

FGFR2 exon 7 missense mutation

The functional study of novel KLHL3 missense mutations associated with pseudohypoaldosteronism type II.

BACKGROUND: Pseudohypoaldosteronism type II (PHA II) is an inherited tubulopathy, clinically defined by three hallmark features, including secondary hypertension, hyperchloremic metabolic acidosis, and persistent hyperkalemia occurring despite maintained glomerular filtration function. Herein, we aim to investigate the association of kelch like family member 3 (KLHL3) gene mutations with PHA II. METHODS: Compound heterozygous KLHL3 mutations were identified through whole-exome sequencing and Sanger validation. AlphaFold-based structural modeling, site-directed mutagenesis of Flag-tagged plasmids, and co-immunoprecipitation (Co-IP)/immunoblotting in vivo were combined to analyze mutant protein interactions and ubiquitination effects. RESULTS: A Chinese patient was identified with two previously unreported KLHL3 variants (c.131G > A [p.R44Q] and c.744 C > G [p.Y248*]), exhibiting a biochemical triad of asymptomatic hyperkalemia, mild metabolic acidosis, and borderline hypertension. Administration of thiazide diuretics effectively normalized the patient’s hyperkalemia and hypertension. A p.R44Q missense mutation predicted as variants of uncertain significance (VOUS) by American College of Medical Genetics and Genomics (ACMG) guidelines, and a p.Y248* nonsense mutation predicted as variants of likely pathogenic. Functional study revealed that the two KLHL3 mutations impair its ubiquitination of with-no-lysine kinase 1 (WNK1) and with-no-lysine kinase 4 (WNK4), and further increase phosphorylation of both SPAK (sterile20/sporulation-specific protein-1 related proline/alanine-rich kinase)/OSR1 (oxidative stress response kinase-1) and Na-Cl-cotransporter (NCC). CONCLUSIONS: Our study characterized two previously unreported KLHL3 mutations, followed by comprehensive in vitro functional analyses to elucidate their pathophysiological contributions at the molecular level.

Humans

Missense mutations in the SNCA gene: Molecular mechanisms and clinical implications.

The SNCA gene on chromosome 4 encodes the alpha-synuclein (αSyn) protein, which plays a central role in the pathogenesis of synucleinopathies, including Parkinson's disease (PD), dementia with Lewy bodies (DLB), and multiple system atrophy (MSA). While αSyn has established roles in synaptic vesicle dynamics and neuronal signaling, alterations in SNCA regulation and sequence contribute to protein misfolding, aggregation, and loss of function. Alterations in secondary and tertiary structure, as well as protein aggregation, affect biochemical interactions, ultimately leading to pathogenesis. This review outlines the molecular architecture of the SNCA gene, including regulatory regions, alternative splicing, and untranslated regions that influence αSyn expression and isoform diversity. Seven missense mutations of the SNCA gene are discussed in detail from the genomic level, extending to phenotypic presentations. These missense mutations have different effects on the aggregation kinetics and fibril formation. Specific genotype-phenotype correlations are evident, with mutations such as A30P and H50Q commonly resembling idiopathic PD, E46K strongly associated with DLB, and G51D, A53T, and A53E linked to atypical parkinsonism and MSA-like syndromes. Differences in age at onset, disease progression, cognitive involvement, and response to therapy further reflect mutation-specific effects and modifying influences of allelic dosage and epigenetic regulation. Collectively, these findings emphasize the importance of SNCA genetic variation in shaping disease phenotype and progression. Improving the understanding of SNCA genotype-phenotype relationships in future studies may facilitate earlier diagnosis, refine prognostic stratification, and support the development of targeted, disease-modifying therapies for synucleinopathies.

Molecular mechanisms

Missense mutations in the lacZ gene that result in degradation of beta-galactosidase structural protein.

Thirty-two missenese mutations were found among more than 200 independently induced mutations in the lacZ gene of Escherichia coli. Twenty of these missense mutations were induced by nitrosguandine, and 12 were induced by aminopurine. The lacZ structural protein was endogenously degradable in seven of the mutant strains; the mutations in these strains were found to lie at only three sites in the lacZ gene. Five of the seven independent mutations were at a single site, and some heterogeneity in the degradation of the lacZ protein was observed within these mutant strains.

Chromosome Mapping

A rare germline TXNIP missense mutation may contribute to the genesis of familial ovarian mature teratoma in human.

Ovarian mature teratoma (OT) is a common ovarian germ cell tumor, and its early onset, multifocality, recurrence and familial aggregation suggest that genetic susceptibility contributes to a subset of cases. Whole-exome sequencing was used to identify candidate susceptibility variants in a family with recurrent and multifocal OT. A rare heterozygous germline TXNIP variant, NM_006472.6:c.1049C > T (p.Pro350Leu), was identified and confirmed by Sanger sequencing. p.Pro350Leu TXNIP showed lower steady-state abundance, faster cycloheximide-chase decay, and greater K48-linked polyubiquitination than wild-type TXNIP. Familial OT specimens also showed weaker TXNIP staining and stronger GLUT1 staining than sporadic OT specimens. TXNIP depletion increased plasma-membrane GLUT1, glucose uptake, lactate production and hyperactivated the PI3K/mTOR pathway, and familial tissues reproduced this PI3K/mTOR-dominant state. To our knowledge, this is the first genomic and functional investigation of a germline susceptibility mechanism for human familial ovarian mature teratoma. These findings establish TXNIP as the first functional candidate susceptibility gene for this phenotype and connect inherited susceptibility to ubiquitin-dependent protein turnover, GLUT1-driven metabolic reprogramming, and PI3K/mTOR-dominant follicular signaling.

Missense mutation

A novel missense mutation in tropomyosin 1 gene associated with hypertrophic cardiomyopathy.

Hypertrophic cardiomyopathy (HCM) is a common genetic heart disorder that can lead to heart failure or sudden death. Family-based identification of rare sarcomeric variants can support molecular diagnosis and cascade screening in inherited HCM. This study aimed to identify and evaluate a novel TPM1 variant found in a Vietnamese family with HCM. The proband, a 3-year-old boy diagnosed with HCM, and eight relatives from three generations underwent clinical and genetic evaluation. A candidate variant initially identified by targeted next-generation sequencing was validated by PCR and Sanger sequencing. Familial segregation analysis was performed, and variant pathogenicity was assessed according to ACMG guidelines with support from in silico prediction and structural modeling. Sanger sequencing confirmed a heterozygous missense variant in exon 6 of TPM1 NM_001018005.2:c.576G > C, p.(Glu192Asp), in the proband, his father, and paternal grandfather, all of whom exhibited clinical signs of HCM. The variant was absent in unaffected relatives and in public population databases. Based on ACMG criteria (PM1, PM2, PM5, and PP3), the variant was classified as likely pathogenic. This novel TPM1 variant segregated with HCM in a Vietnamese family, expands the known mutational spectrum of TPM1 in hypertrophic cardiomyopathy, and warrants further functional investigation and familial genetic evaluation.

American College of Medical Genetics and Genomics

A missense mutation in the gene coding for ribosomal protein S17 (rpsQ) leading to ribosomal assembly defectivity in Escherichia coli.

The conditionally lethal mutation, 2861 mis, has been mapped inside the ribosomal protein gene cluster at 72 minutes on the Escherichia coli chromosome and was found to cotransduce at 97% with rpsE (S5). The 2861 mis mutation leads to thermosensitivity and impaired assembly in vivo of 30S ribosomal particles at 42 degrees C. The strain carrying the mutation has an altered S 17 ribosomal protein; the mutational alteration involves a replacement of serine by phenylalanine in protein S 17. Spontaneous reversion to temperature independence can restore the normal assembly in vivo of 30 S ribosomal subunits at 42 degrees C and the normal chromatographical behaviour of the S 17 ribosomal protein in vitro. We conclude therefore that the 2861 mis mutation affects the structural gene for protein S 17 (rpsQ).

Bacterial Proteins

Effect of X-irradiation on frameshift and missense mutations in Saccharomyces cerevisiae.

In cell populations of Saccharomyces cerevisiae homogeneous for sensitivity to X-irradiation, induction of base insertions/deletions and base substitutions was quantitatively analyzed in a reversion system. The repair mechanisms phenotypically unexpressed in the sensitive cell fraction and fully operating in resistant cells did not affect point mutations of either type.

DNA Repair

Segregation of a missense mutation in the amyloid precursor protein gene with familial Alzheimer's disease.

A locus segregating with familial Alzheimer's disease (AD) has been mapped to chromosome 21, close to the amyloid precursor protein (APP) gene. Recombinants between the APP gene and the AD locus have been reported which seemed to exclude it as the site of the mutation causing familial AD. But recent genetic analysis of a large number of AD families has demonstrated that the disease is heterogeneous. Families with late-onset AD do not show linkage to chromosome 21 markers. Some families with early-onset AD show linkage to chromosome 21 markers, but some do not. This has led to the suggestion that there is non-allelic genetic heterogeneity even within early onset familial AD. To avoid the problems that heterogeneity poses for genetic analysis, we have examined the cosegregation of AD and markers along the long arm of chromosome 21 in a single family with AD confirmed by autopsy. Here we demonstrate that in this kindred, which shows linkage to chromosome 21 markers, there is a point mutation in the APP gene. This mutation causes an amino-acid substitution (Val----Ile) close to the carboxy terminus of the beta-amyloid peptide. Screening other cases of familial AD revealed a second unrelated family in which this variant occurs. This suggests that some cases of AD could be caused by mutations in the APP gene.

Alzheimer Disease

Analysis of Genetic Factors in a Family With Short Stature.

BACKGROUND: To elucidate the genetic underpinnings of short stature in a familial cohort of five individuals. METHODS: A family with a history of short stature from Zhongnan Hospital of Wuhan University was the subject of this study. Peripheral blood samples were collected from family members for whole exome sequencing and Sanger sequencing to identify genetic anomalies. RESULTS: The male proband, aged 3&#x2009;years and 10&#x2009;months, had significant growth retardation, with a height of 91&#x2009;cm (<&#x2009;3rd percentile) and a weight of 13&#x2009;kg (<&#x2009;3rd percentile). Whole exome sequencing identified a missense mutation in the COL1A2 gene (c.577G>A, p.Gly193Ser) with maternal inheritance. Sanger sequencing confirmed this mutation in the mother and half-sister. According to American College of Medical Genetics and Genomics (ACMG) guidelines, this variant was classified as likely pathogenic. Additionally, a heterozygous mutation in the GH1 gene (c.291+1G>A) was detected in the father and grandfather, contributing to the familial short stature phenotype. CONCLUSION: In this family, we identified that variants in the COL1A2 and the GH1 can each cause short stature. This reflects both the genetic consistency and complexity of short stature, which is highly dependent on comprehensive genetic testing.

Humans

Potential contributors to variable penetrance of NOTCH3 p.Arg1231Cys Variant.

Missense mutations in NOTCH3, especially cysteine-altering pathogenic variants, are the cause of cerebral autosomal dominant arteriopathy with subcortical infarcts and leukoencephalopathy. The NOTCH3 p.Arg1231Cys variant, located in EGFr domain 31, is classified as low-risk under the three-tiered EGFr domain risk stratification system. We report two cases of p.Arg1231Cys heterozygosity presenting with early-onset dementia, strokes, and extensive leukoencephalopathy. These cases highlight the potential contributing factors to increasing penetrance of p.Arg1231Cys variant, and the need for functional evaluation to improve the clinical utility of genetic testing in hereditary small vessel disease.

Humans

Spontaneous, ultraviolet and ionizing radiation mutagenesis in two auxotrophic strains of Salmonella typhimurium carrying an R plasmid.

Ultraviolet-induced, gamma-induced and spontaneous mutation yields were studied in two different auxotrophic strains of Salmonella typhimurium in the presence and absence of the UV-protecting drug resistance transfer factor R-Utrecht. One strain, carrying the hisC527 (amber) mutation, showed significantly increased spontaneous, UV- and gamma-induced mutability in the presence of the R-Utrecht plasmid. The other strain, carrying the trpD1 mutation (thought to be a missense mutation), also showed significantly increased UV mutability in the presence of the R-Utrecht plasmid. The other strain, carrying the trpD1 mutation (thought to be a missense mutation), also showed significantly increased UV mutability in the presence of the R factor, but appeared to show no significant increase in spontaneous mutability and only a very slight increase in gamma-mutability when carrying the R factor. These results demonstrate that the R-Utrecht plasmid, known to enhance UV-induced mutation yields in S. typhimurium, can also significantly enhance both spontaneous and gamma-induced mutation yields in this species. The latter effects are not so discernible with all markers, however, as shown by the results with strains carrying the trpD1 mutation. Enhancement of spontaneous mutability thus appears to be correlated with enhancement of gamma-mutability rather than UV mutability.

Gamma Rays

Treatment of a severe vascular disease using a bespoke CRISPR-Cas9 base editor in mice.

Pathogenic missense mutations in the alpha actin isotype 2 (ACTA2) gene cause multisystemic smooth muscle dysfunction syndrome (MSMDS), a genetic vasculopathy that is associated with stroke, aortic dissection and death in childhood. Here we perform mutation-specific protein engineering to develop a bespoke CRISPR-Cas9 enzyme with enhanced on-target activity against the most common MSMDS-causative mutation ACTA2 R179H. To directly correct the R179H mutation, we screened dozens of configurations of base editors to develop a highly precise corrective A-to-G edit with minimal deleterious bystander editing that is otherwise prevalent when using wild-type SpCas9 base editors. We create a murine model of MSMDS that shows phenotypes consistent with human patients, including vasculopathy and premature death, to explore the in vivo therapeutic potential of this strategy. Delivery of the customized base editor via an engineered smooth muscle-tropic adeno-associated virus (AAV-PR) vector substantially prolongs survival and rescues systemic phenotypes across the lifespan of MSMDS mice, including in the vasculature, aorta and brain. Our results highlight how bespoke mutant-specific CRISPR-Cas9 enzymes can improve mutation correction with base editors.

Animals