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At least 19 recordsLinked to original sources

Identification of a common secondary mutation in the Neurospora crassa knockout collection conferring a cell fusion-defective phenotype.

Gene-deletion mutants represent a powerful tool to study gene function. The filamentous fungus Neurospora crassa is a well-established model organism, and features a comprehensive gene knockout strain collection. While these mutant strains have been used in numerous studies, resulting in the functional annotation of many Neurospora genes, direct confirmation of gene-phenotype relationships is often lacking, which is particularly relevant given the possibility of background mutations, sample contamination, and/or strain mislabeling. Indeed, spontaneous mutations resulting in phenotypes resembling many cell fusion mutants have long been known to occur at relatively high frequency in N. crassa, and these secondary mutations are common in the Neurospora deletion collection. The identity of these mutations, however, is largely unknown. Here, we report that the Δada-3 strain from the N. crassa knockout collection, which exhibits a cell fusion defect, harbors a secondary mutation responsible for this phenotype. Through whole-genome sequencing and genetic analyses, we found a ~30-Kb deletion in this strain affecting a known cell fusion-related gene, so/ham-1, and show that it is the absence of this gene—and not of ada-3—that underlies its cell fusion defect. We additionally found three other knockout strains harboring the same deletion, suggesting that this mutation may be common in the collection and could have impacted previous studies. Our findings provide a cautionary note and highlight the importance of proper functional validation of strains from mutant collections. We discuss our results in the context of the spread of cell fusion-defective cheater variants in N. crassa cultures.

Neurospora crassa

A mutation to 5-methyltryptophan dependence in the tryptophan (trp) operon of Salmonella typhimurium. II. Studies of 5-methyltryptophan-dependent mutants and their revertants.

Mutants of S. typhimurium with a defect in the first structural gene of the trp operon can utilize anthranilic acid (AA) as a growth factor. Among a group of 5-methyltryptophan (MT) resistant derivatives of trpA mutants we encountered several with a novel phenotype: they actually grew better in the presence of MT than in its absence. Normally MT inhibits growth of S. typhimurium at the concentration we employed due to its ability to act as co-repressor of the trp operon and as a feedback inhibitor of anthranilate synthetase (AS) the first enzyme for tryptophan biosynthesis. Mutations to MT-dependence were only found in strains carrying extremely polar trpA mutations. In all cases analyzed, mutations causing MT-dependence mapped at the extreme operator distal end of trpA. The mutation trpA515 responsible for MT-dependence in strain SO61 (genotype trpA49trpA515) was recombined away from the polar mutation. The strain thus obtained, SO495 was totally dependent on MT for growth on AA supplement. Strain SO495 lacks AS and under repressing growth conditions synthesizes the trp enzymes constitutively at 2--3 times the basal level. Under derepression, while the levels of the distal enzymes, as represented by tryptophan synthetase--beta subunit (TSbeta), did not increase there was a marked drop in the activity of anthranilate-PRPP phosphoribosyltransferase, (PRT) the enzyme catalyzing the second step of tryptophan biosynthesis. trpA515 was found to revert to prototrophy at a low frequency (about 10(-8)) which was not increased by chemical mutagens or ultraviolet radiation. In contrast, it was found to revert to MT-independence (growth on AA in the absence of MT) at a fairly high spontaneous frequency (about 10(-6)) and this frequency could be increased approximately tenfold by mutagens causing base substitutions or deletions but not by frameshift mutagens. About one hundred MT-independent revertants of trpA515 were mapped and found to fall into three general classes: (A) mutations at or near the trpA515 site (B) secondary mutations located upstream from trpA515, (C) deletions of various sizes. Based on a detailed genetic and physiological study of twelve representative MT-independent revertants, it appears that trpA515 may be caused by the insertion of a piece of DNA with some of the properties described for the IS elements found in Escherichia coli. The trpA515 insertion should contain (in this order), a transcription terminator, a low efficiency promoter and, probably, a translation start signal.

Chromosome Mapping

Mutations affecting the antigenic properties of hypoxanthine-guanine phosphoribosyl transferase in cultured Chinese hamster cells.

Cells of the mutant Chinese hamster strain RJK10 do not contain either hypoxanthine-guanine phosphoribosyl transferase activity (HGPRT) or protein that cross-reacts immunologically with HGPRT. HGPRT+ revertants have been isolated from RJK10 and those strains produce HGPRT with altered antigenic properties. HGPRT from the revertant cells is less reactive with anti-HGPRT serum than enzyme from the wild-type cells, and enzymes from the two sources are immunoprecipitated independently from mixtures of cell extracts. Thus one or more of the antigenic determinants present on Chinese hamster HGPRT are either missing or present in an altered form on HGPRT from revertants of RJK10. This indicates that RJK10 carries a mutation in the structural gene for HGPRT and that secondary mutations in the gene give rise to the revertants that produce the antigenically altered enzymes.

Cell Line

PfkB and pfkC loci of Escherichia coli.

Mutants lacking Escherichia coli phosphofructokinase (pfkA, 78 min) are suppressed by the unlinked pfkB1 mutation, which restores some enzyme activity (Morrissey and Fraenkel, 1972). We here describe a secondary mutation at pfkB, "PFKB-," which abolishes the suppression as well as the low residual activity of unsuppressed pfkA mutants. pfkB is at about 33 min. with the gene order groD-pps-pheS-pfkB. A positive selection was found that yielded both the pfkB-mutations and a new similar mutation, pfkC-. pfkC is an early marker in Hfr HL16(ca. 50 to 55 min). Some pfkC-, but no pfkB-, mutations were amber. A temperature-sensitive pfkB- was also obtained. Strains carrying pfkB- or pfkC-, but wild type at pfkA, were not markedly affected in growth on sugars. A new search for suppressors such as pfkB1 gave five independent candidates, all of which suppressed both pfkA1 and pfkA2 and occurred in the pfkB region; none occurred at pfkC. Neither the pfkB nor the pfkC loci have assigned functions. It is likely that they are somehow involved in expression of phosphofructokinase activity 2 (Fraenkel, Kotlarz, and Buc, 1973).

Alleles

Energy coupling factor as target of colicin K: characterization of a colicin K-insensitive ecf mutant of Escherichia coli.

We isolated a colicin K-insensitive energy uncoupled mutant of Escherichia coli. This mutant was presumed to be an ecf mutant as evidenced by its similarity to a known ecf mutant (M. A. Lieberman and J.-S. Hong, 1974) with respect to the mutational site, reversion pattern, and defects in transport and growth. The mutation conferring the colicin K-insensitivity resided in the ecf gene as the majority of the secondary mutations overcoming the ecf phenotype reverted the colicin K-insensitive phenotype to colicin K-sensitive. The insensitivity of the mutant to colicin K was not due to either a defect in adsorption or to a lack of the energized membrane state. The defect was most probably due to the inability of colicin K molecules to interact with their target. Our previous studies concerning the role of the ecf gene product in energy coupling to active transport and oxidative phosphorylation support the contention that the ECF protein is itself the direct target of colicin K.

Bacterial Proteins

Sigma subunit of Escherichia coli RNA polymerase affects the function of lambda N gene.

A new class of Escherichia coli mutants, referred to as grn, has been isolated by localized mutagenesis. These mutations affect the sigma subunit of DNA-dependent RNA polymerase (ribonucleoside 5'-triphosphate:RNA nucleotidyltransferase, EC 2.7.7.6) by abolishing the expression of the lambda N gene, and they are closely lniked to dnaG in the order dnaG-grn-uxaA. Detailed study of one such mutant, grn1, yielded the following results: (i) grn1 is a single mutation and the mutant cell shows cold-sensitivity in growth; (ii) the Grn phenotype of the mutant can easily be suppressed by secondary mutations in the beta subunit gene of RNA polymerase; (iii) purified holoenzyme of RNA polymerase isolated from the mutant showed an altered salt-dependency in vitro, and the mixed reconstitution of the mutant with the wild-type subunits showed that the sigma subunit of the grn1 mutant is altered; (iv) lambda phage mutants (lambda grg), which overcome the grn mutation, can be classified into two groups, the "nin-deletion" and the "N-mutant" groups (both of these are also able to grow on the previously described groN mutant of Georgopoulos and nusAB of Friedman); (iv) the mutant polymerase transcribed 12S as well as 7S RNA from lambda DNA in the presence of the rho factor in vitro. These results indicate that the grn mutation alters the sigma subunit of RNA polymerase and that the sigma subunit participates in activating the N-mediated antitermination mode of lambda phage transcription.

Bacteriophage lambda

Genetic analysis of mutations in the transfer genes of pDU202 tra::Tn10 plasmids, caused by the excision of Tn10.

Transfer-deficient derivatives of pDU202 (a Tcs deletion mutant of R100-1) caused by the insertion of Tn10 into the R factor's transfer genes have been described previously. Tetracyline-sensitive mutants of four of these were selected. In the majority of cases the Tcs mutation was caused by a deletion of the Tcr genes which was often accompanied either by a deletion of some of the flanking transfer genes or by a secondary mutation which was probably an inversion. A number of preferred end points for the deletions and inversions occur in the transfer operon of pDU202. Analysis of the mutants by complementation tests with Flac tra elements confirmed that the order of genes in the promoter distal part of the tra region of pDU202 is traKBCFHGSD and traI.

Escherichia coli

Interaction of super-repressible and dominant constitutive mutations for the synthesis of galactose pathway enzymes in Saccharomyces cerevisiae.

Two dominant uninducible mutant alleles in the gal80 locus were identified. The GAL80s-1 and GAL80s-2 mutants showed novel phenotypes in response to the newly isolated GAL81-1 mutant allele, a dominant constitutive mutation linked to the gal4 locus; the GAL80s-1 GAL81-1 strain was inducible and the GAL80s-2 GAL81-1 strain was uninducible. Many galactose positive revertants from the GAL80s-2 GAL81-1 strain were isolated. It was proved that each revertant was due to a secondary mutation either in the gal80 or GAL81 locus, whereas revertants due to mutation at the supposed controlling site for the structural gene cluster of the galactose-pathway enzymes have not been isolated.

Carboxy-Lyases

The role of cAMP in flagellation of Salmonella typhimurium.

A mutational alteration either in adenylate cyclase (cya-) or in cyclic-3'5'-AMP (cAMP) receptor protein (crp-) rendered Salmonella typhimurium incapable of producing flagella. The amount of mRNA specific for flagellin in these mutants was almost negligible when assayed in an in vitro protein synthesizing system. A secondary mutation cfs, partially suppressing the cya- mutation, was identified among the revertants of cya-. A mutation in the same cistron as cfs resulted in a non-flagellate phenotype either by itself or in combination with cfs. The cistron, which was given the gene symbol flaT, was located between flaE and flaL. It was suggested that cAMP receptor protein together with cAMP modulates the gene flaT, which in turn acts as a positive effector on the synthesis of active mRNA specific for flagellin.

Adenylyl Cyclases

Defective transport and other phenotypes of a periplasmic "leaky" mutant of Escherichia coli K-12.

A mutant of Escherichia coli K-12 deficient in high-affinity leucine transport and related binding proteins was obtained by selecting for azaleucine resistance after bacteriophage Mu mutagenesis. We determined that the cause was a generalized loss of periplasmic binding proteins and a sharp decrease in the activity of transport systems requiring them. Other transport systems resistant to osmotic shock and present in membrane vesicles, were affected to a lesser degree or not at all. The mutation, designated lky::Mucts, was shown to be a pleiotropic envelope mutation, rendering the mutant sensitive to ionic and nonionic detergents, antibiotics, and ethylenediaminetetraacetic acid: the strain had also acquired tolerance to colicins E1, E2, and E3, while remaining normally sensitive to a variety of bacteriophages. An analysis of the lipopolysaccharide of parent and mutant strains revealed a twofold reduction in the neutral sugar content of the core oligosaccharide of the lky strain, but no change in sensitivities to phages which utilize lipopolysaccharide or outer membrane proteins for absorption. The lky::Mucts locus was mapped by transduction and found to be located near, or in, the tolPAB gene cluster linked to gal. Secondary mutations suppressing the detergent sensitivity of lky arose at a frequency of 10(-7), yielding a variety of new phenotypes. The lky::Mucts mutation did not give rise to obvious alterations in the gross morphology of the cell or in cell division.

Bacterial Proteins

Genomic Profiling, Risk Stratification, and Post-Transformation Treatment Outcomes in Patients with Transformed Small-Cell Lung Cancer: A Multicenter Analysis.

BACKGROUND: Transformed small-cell lung cancer (T-SCLC) is an increasingly recognized resistance mechanism in EGFR-mutant lung adenocarcinoma. This study aimed to identify early predictors of histologic transformation and evaluate post-transformation treatment outcomes. METHODS: We retrospectively collected 163 T-SCLC patients from five Chinese centers. Next-generation sequencing was performed on 60 EGFR-mutant patients, including 47 paired primary-transformed samples. Integrated genomic and clinical analyses were conducted to delineate molecular features and survival outcomes. RESULTS: Among 150 EGFR-mutant patients, the median time to SCLC transformation was 25.8 months and median post-transformation overall survival (OS) was 14.2 months. Clinical and survival data for the 13 EGFR wild-type patients are reported descriptively given the limited sample size. Among 108 treatment-evaluable patients, first-line EGFR-TKI plus chemotherapy, chemotherapy alone, and immune checkpoint inhibitors (ICIs) plus chemotherapy yielded median progression-free survival (PFS) of 6.2, 5.30, and 4.07 months (P = 0.041) and median OS of 21.2, 27.6, and 13.6 months (P = 0.193). In later-line therapy, taxane-based regimens achieved a median PFS of 6.93 months, outperforming camptothecin-based (1.13 months) and other regimens (1.90 months; P = 0.049). High evolutionary diversity was associated with shorter post-transformation OS (6.77 vs. 11.10 months), with restricted cubic spline analysis showing a nonsignificant trend toward a nonlinear association (P = 0.055).Age, RB1/NTRK1 mutation, and secondary T790M mutation were identified as independent risk factors and integrated into a predictive model with high accuracy. CONCLUSIONS: This study establishes a clinically applicable model for early prediction and risk stratification of SCLC transformation. Taxane-based regimens emerge as a promising later-line therapeutic option for T-SCLC.

Humans

Human infections with thymine-requiring bacteria.

Clinical details are presented of 16 patients from whom thymine-requiring (thy-) mutants of pathogenic organisms were isolated; all had been treated with co-trimoxazole. The urine of six patients infected with thy- mutants contained levels of a thymine-like compound sufficient to support their growth. This might be the result either of the breakdown of pus cells or of thymine production by living bacteria that persist in stones or scar tissue, a suggestion supported by the observation of mutant growth "in satellitism" in vitro. Since 1975 we have isolated mutants from patients who have had short courses of co-trimoxazole, in contrast to those we reported upon previously, all except one of whom had had long courses. We are now isolating thy- mutants more frequently than hitherto. Secondary mutations to a low thymine requirement may now be occurring more rapidly, thereby allowing more mutant organisms to survive. The clinical significance of infection with thy- mutants is not yet clear, but evidence is accumulating that they are pathogenic. Alternative chemotherapy is suggested for patients from whom such mutants have been isolated.

Adult

TrkA of Streptococcus mitis CCUG31611 binds cyclic di-adenosine monophosphate and is required for growth in low potassium conditions.

Cyclic di-adenosine monophosphate (c-di-AMP) is a bacterial second messenger regulating many physiological processes in bacteria. In the oral commensal species Streptococcus mitis, c-di-AMP is involved in regulating metabolism, growth, colony morphology, chain length, biofilm formation and DNA stress tolerance. However, no c-di-AMP-regulated effector proteins have yet been characterized in S. mitis. In this study, we first show that a ΔcdaA mutant, unable to produce c-di-AMP, grows slowly under low environmental potassium conditions. Growth of the cdaA mutant was not restored by reintroducing cdaA in the original locus (KBcdaA). Whole-genome sequencing of multiple KBcdaA isolates revealed secondary mutations in a putative potassium transporter. The mutations were predicted to result in the truncation of the protein or the alteration of a conserved glycine residue essential for selective potassium uptake, disrupting protein function. A Δpde2 mutant overproducing c-di-AMP survived poorly under high environmental sodium concentrations. We then characterized the potassium transporter regulator protein TrkA. Biochemical analyses of the purified recombinant TrkA protein revealed that it specifically binds c-di-AMP with high affinity in vitro. Using deletion mutants of trkA, we demonstrate that TrkA is essential for growth under low environmental potassium conditions. Ultra-high-performance liquid chromatography coupled to tandem mass spectrometry revealed lower c-di-AMP concentration in the ΔtrkA mutant compared to the WT. This was not due to transcriptional regulation of the expression of the c-di-AMP turnover proteins CdaA, Pde1 or Pde2. C-di-AMP production is not affected by the extracellular potassium concentrations under the conditions tested. We also demonstrate a potential role of TrkA in UV stress tolerance but do not characterize the mechanism in this study.

Potassium

The Streptococcus pyogenes mannose phosphotransferase system (Man-PTS) influences antimicrobial activity and niche-specific nasopharyngeal infection.

Streptococcus pyogenes is a human-adapted pathogen that can cause multiple diseases, including pharyngitis and skin infections. Although this bacterium produces many virulence factors, how S. pyogenes competes with the host microbiota is not well understood. Here, we detected antimicrobial activity from S. pyogenes MGAS8232 that prevented the growth of Micrococcus luteus. This activity was produced when cells were grown in 5% CO2 in M17 media supplemented with galactose; however, the addition of alternative sugars coupled with genome sequencing experiments revealed that the antimicrobial phenotype was not related to classical bacteriocins. To further determine genes involved in the production of this activity, a transposon mutant library in S. pyogenes MGAS8232 identified the mannose phosphotransferase system (Man-PTS), a major sugar transporter, as important for the antimicrobial phenotype. Loss-of-function transposon mutants linked to the antimicrobial activity were identified to also be involved in alternative sugar utilization, and additionally, the Man-PTS was further identified from an inadvertent secondary mutation in a bacteriocin operon mutant. Sugar utilization in the Man-PTS mutants demonstrated that galactose, mannose, and N-acetylglucosamine utilization was impaired. RNA-seq experiments in high and low glucose concentrations further characterized the Man-PTS as a glucose transporter; however, transcriptional regulators or virulence factors were not affected with the loss of the Man-PTS. Deletion of Man-PTS demonstrated defects in a mouse model of nasopharyngeal infection but not skin infection. This work suggests that the ability of S. pyogenes to utilize alternative sugars presented by glycans may play a role in acute infection and interactions with the endogenous microbial population existing in the nasopharynx.IMPORTANCEStreptococcus pyogenes is responsible for over 500,000 deaths per year primarily due to invasive infections and post-infection sequelae, although the most common manifestations include pharyngitis and impetigo. S. pyogenes can adapt to its environment through alternative sugar metabolism. Here, we identified an antimicrobial phenotype that was not bacteriocin-related but a by-product of alternative sugar metabolism. The mannose phosphotransferase system was involved in the production of the antimicrobial and was also important for S. pyogenes to utilize alternative sugars and establish nasopharyngeal infection but not skin infection. Overall, this study identified potential strategies used by S. pyogenes for interactions with the endogenous microbiota and further elucidated the importance of sugar metabolism in acute upper respiratory tract infection.

Streptococcus pyogenes

Role of D-tryptophan oxidase in D-tryptophan utilization by Escherichia coli.

Mutants of Escherichia coli K-12 that require L-tryptophan (trp) are normally unable to utilize D-tryptophan to fulfill their requirement. However, secondary mutations (dadR) that confer this ability can be isolated. In such strains two distinct enzymes are found to be produced at high levels: D-amino acid oxidase (EC 1.4.3.3) and D-tryptophan oxidase. A convenient assay procedure for D-tryptophan oxidase is described. The two enzymes could be distinguished on the basis of their sensitivity to inhibition by L-phenylalanine and L-tyrosine. Strains that were trp dadR could not grow with D-tryptophan in the presence of L-phenylalanine, but further mutations, Fyo, could be isolated that allowed growth under these conditions. Some of them were characterized by further increases in the level of D-tryptophan oxidase activity and a sharp decrease in D-amino acid oxidase. These kinds of Fyo mutations lay in or near the dadR gene. The substrate specificity of the two enzymes toward a large number of compounds was examined. The transamination of aromatic keto acids was investigated. In the wild-type strain only a single enzyme, transaminase A (EC 2.6.1.5), was found, and it was irreversibly activated when subjected to elevated temperatures. The present state of our knowledge on D-amino acid utilization in E. coli is summarized.

Amino Acid Oxidoreductases

Pseudoreversion of lactose operator-constitutive mutants.

A set of pseudorevertants of lactose operator-constitutive (lacOc) mutant has been obtained. Analysis of a subset of these pseudorevertants indicates that, in some cases, the secondary mutation alters the lactose repressor (lacl gene product), whereas in others it seems to have occurred in the lactose operator (lacO) itself. Of the lacl gene mutations, the lacl8 mutation, already known to suppress all lacOc mutations nonspecifically, was recovered by a selection technique developed for this study. However, two additional lacl gene mutants were selected which appear to suppress lacOc sequences in a more-or-less specific fashion; repressor interaction with some operator sequences is facilitated, whereas the binding with lacO+ and others is attenuated concomitantly.

Escherichia coli

[Production and study of Bacillus subtilis mutants for genes involved in nucleoside catabolism].

By means of selection for a low thymine requirement the mutants fo thymine auxotrophs for deoxyriboaldolase (dra) and phosphodeoxyribomutase (drm) genes were obtained. Besides the mutants for pyrimidinenucleoside phosphorylase gene (pdp) were olso isolated using selection on the fluorodeoxyuridine resistance. The latter enzyme provides for pyrimidine nucleosides catabolism (thymidine, uridine) in Bacilli, as well as the conversion of exogenous thymine to thymidine in thymine auxotrophs. The data obtained when studying the deo-enzymes activities in various types of the mutants and also under the condition of induction by thymidine and acetoaldehyde are in accordance with the assumption that deoxyriboso-5-phosphate is an inductor of the deo-enzymes in Bacillus subtilis. The genes dra and pdp were tightly linked as it had been shown by the transformation experiments; in contrast, no linkage was revealed between dra and drm or pdp and drm. A secondary mutation (adn), not linked with dra and blocking the ability of bacteria to catabolise adenosine (purine nucleoside phosphorylase activity remains constant) was found in some dra-mutants.

Acetaldehyde