PubMed HealthSearch

SEARCH · PubMed Health

Results for “mutant”

Explore indexed PubMed citations for clinical trials, systematic reviews and public health research. Read source abstracts and follow each citation to its original PubMed record.

Quote a phrase for an exact phrase match. Source license links do not imply unrestricted reuse.

At least 19 recordsLinked to original sources

Temperature-sensitive mutants of Streptococcus pneumoniae. I. Preparation and characterization in vitro of temperature-sensitive mutants of type I S. pneumoniae.

After exposure of type I Streptococcus pneumoniae to nitrosoguanidine, 13 temperature-sensitive (ts) mutants were selected that were restricted in capacity to form colonies on blood agar at 38 C. Whereas colony formation by the type I parent (ts+) was unaffected by a temperature of as high as 39 C, the ts mutants exhibited a spectrum of temperature sensitivity in which colony formation was inhibited significantly at 36 C, 37 C, 38 C, or 39 C. Growth of ts mutants at 38 C in broth was reduced or delayed relative to that of ts organisms under identical conditions. In general, there was a direct correlation between degree of temperature sensitivity and genetic stability. Mutants grown at a permissive temperature resembled the ts+ type I parent in colonial morphology and properties of alpha-hemolysis, bile solubility, optochin sensitivity, and antibiotic sensitivity. Moreover, in vitro studies indicated that the mutants retained capsules of immunochemically reactive type I capsular polysaccharide.

Bile

Retrotransposable element derepression distinguishes DNMT3A-mutant from TET2-mutant clonal haematopoiesis.

Clonal haematopoiesis (CH) is driven by somatic mutations in haematopoietic stem cells that generate clonal populations detectable in peripheral blood and is present in 10-20% of individuals over the age of 65. Mutations in DNMT3A and TET2 are the most common drivers and have been linked to inflammatory phenotypes and increased risk of haematologic and cardiovascular disease. However, the cell-intrinsic mechanisms connecting these mutations to inflammatory signalling remain incompletely understood. Because retrotransposable elements (RTEs) are epigenetically regulated and can activate innate immune pathways when derepressed, we hypothesised that RTE reactivation may represent a mutation-specific mechanism linking clonal haematopoiesis driver mutations to inflammatory pathways. We analysed RTE expression and clonal burden in peripheral blood mononuclear cell (PBMC) samples from 56 individuals with CH and 12 non-CH controls using integrated genomic and transcriptomic approaches, with complementary validation by TARGET-seq across haematopoietic lineages. High variant allele frequency (VAF; > 10%) DNMT3A-mutant clones exhibited widespread derepression of RTEs, particularly LINE and LTR families, whereas TET2-mutant clones showed a trend towards reduced RTE expression relative to controls. Transcriptomic analyses revealed that DNMT3A high-variant allele frequency clones with elevated RTE expression were enriched for inflammatory signalling pathways, including TNF-α/NF-κB signalling, interferon responses, and senescence-associated signatures. In contrast, TET2-mutant clones lacked these RTE-associated inflammatory signatures and instead showed enrichment of oxidative phosphorylation, reactive oxygen species signalling, and a mechanistic target of rapamycin complex 1 pathway. These findings were reproduced in an independent cohort. Collectively, our results highlight mutation-specific inflammatory mechanisms in clonal haematopoiesis and provide a foundation for future functional and preclinical studies to determine whether modulation of RTE activity can influence the inflammatory phenotype of DNMT3A-mutant CH and represent a potential therapeutic strategy.

DNMT3A

Lipid A mutants of Salmonella typhimurium. Purification and characterization of a lipid A precursor produced by a mutant in 3-deoxy-D-mannooctulosonate-8-phosphate synthetase.

We describe here the isolation, purification, and structural characterization of a lipid A precursor synthesized under nonpermissive conditions by a mutant of Salmonella typhimurium conditionally defective in the synthesis of the 3-deoxy-D-mannoctulosonate (2-keto-3-deoxyoctonate, KDO) region of the lipopolysaccharide. The precursor was isolated free from lipopolysaccharide, murein, and phospholipids by extraction of delipidated cells with 90% phenol/CHCL3/petroleum ether. The molecule was recovered from the phenol phase after precipitation of lipopolysaccharide with H2O and subsequently purified by DEAE-cellulose chromatography. Structural analyses showed that the lipid A precursor is a phosphorylated glucosamine disaccharide containing one ester and two amide-linked residues of beta-hydroxymyristate. In contrast to lipid A, the precursor disaccharide lacks ester-linked 12:0 and 14:0 fatty acids as well as KDO. The molecule contains 2 phosphate residues both of which were identified as phosphomonoesters by 31P NMR spectroscopy. One of the phosphomonoesters is located in position 1 of the reducing terminal glucosamine residue; the location of the other phosphomonoester was not determined. The structure of the precursor provides strong support for the conclusion that KDO incorporation occurs at an early stage in lipid A biosynthesis prior to the incorporation of ester-linked saturated fatty acids.

Aldehyde-Lyases

Altered prephenate dehydratase in phenylalanine-excreting mutants of Brevibacterium flavum.

The regulatory properties of three key enzymes in the phenylalanine biosynthetic pathway, 3-deoxy-D-arabino-heptulosonate 7-phosphate synthetase (DAHP synthetase) [EC 4.1.2.15], chorismate mutase [EC 5.4.99.5], and prephenate dehydratase [prephenate hydro-lyase (decarboxylating), EC 4.2.1.51] were compared in three phenylalanine-excreting mutants and the wild strain of Brevibacterium flavum. Regulation of DAHP synthetase by phenylalanine and tyrosine in these mutants did not change at all, but the specific activities of the mutant cell extracts increased 1.3- to 2.8-fold, as reported previously (1). Chorismate mutase activities in both the wild and the mutant strains were cumulatively inhibited by phenylalanine and tyrosine and recovered with tryptophan, while the specific activities of the mutants increased 1.3- to 2.8-fold, like those of DAHP synthetase. On the other hand, the specific activities of prephenate dehydratase in the mutant and wild strains were similar, when tyrosine was present. While prephenate dehydratase of the wild strain was inhibited by phenylalanine, tryptophan, and several phenylalanine analogues, the mutant enzymes were not inhibited at all but were activated by these effectors. Tyrosine activated the mutant enzymes much more strongly than the wild-type enzyme: in mutant 221-43, 1 mM tyrosine caused 28-fold activation. Km and the activation constant for tyrosine were slightly altered to a half and 6-fold compared with the wild-type enzyme, respectively, while the activation constants for phenylalanine and tryptophan were 500-fold higher than the respective inhibition constants of the wild-type enzyme. The molecular weight of the mutant enzyme was estimated to be 1.2 x 10(5), a half of that of the wild-type enzyme. The molecular weight of the mutant enzyme was estimated to be 1.2 X 10(5) a half of that of the wild type enzyme, while in the presence of tyrosine, phenylalanine, or tryptophan, it increased to that of the wild-type enzyme. Immediately after the mutant enzyme had been activated by tyrosine and then the tyrosine removed, it still showed about 10-fold higher specific activity than before the activation by tyrosine. However, on standing in ice the activity gradually fell to the initial level before the activation by tyrosine. Ammonium sulfate promoted the decrease of the activity. On the basis of these results, regulatory mechanisms for phenylalanine biosynthesis in vivo as well as mechanisms for the phenylalanine overproduction in the mutants are discussed.

3-Deoxy-7-Phosphoheptulonate Synthase

Temperature-sensitive mutants of type I Streptococcus pneumoniae: preparation, characterization, and evidence for attenuation and immunogenicity.

Thirteen temperature-sensitive (ts) mutants of type I Streptococcus pneumoniae were selected after exposure of virulent wild-type (ts+) organisms to nitrosoguanidine. Each mutant resembled the ts+ parent in properties of alpha-hemolysis, bile solubility, optochin sensitivity, antibiotic sensitivity, and serotype. Unlike the ts+ parent, however, each ts mutant was restricted in its capacity to form colonies on blood agar at 38 C. With the exception of two mutants, there was a correlation between the degree of temperature-sensitivity of a mutant and its genetic stability. When inoculated intraperitoneally into mice, 11 of 13 mutants were attenuated and induced homologous resistance. Three mutants (ts 1, ts 3, and ts 4) were also studied in hamsters and were found to be attenuated and immunogenic after intraperitoneal injection. Study of the behavior of mutants ts 1, ts 3, and ts 4 in the blood of hamsters suggested that attenuation may be related, in part, to decreased growth and survival of ts organisms at body temperature. Mutants ts 1 and ts 4 were completely attenuated for hamsters when administered intranasally and induced significant resistance to subsequent challenge with wild-type organisms by the same route. Local administration of ts mutants of type 1 S. pneumoniae to hamsters may provide a model for evaluating the potential of live vaccines in the prevention of disease due to bacterial respiratory tract pathogens.

Animals

Regulation of nitrogen fixation. Nitrogenase-derepressed mutants of Klebsiella pneumoniae.

1. A new procedure is described for selecting nitrogenase-derepressed mutants based on the method of Brenchley et al. (Brenchley, J.E., Prival, M.J. and Magasanik, B. (1973) J. Biol. Chem. 248, 6122-6128) for isolating histidase-constitutive mutants of a non-N2-fixing bacterium. 2. Nitrogenase levels of the new mutants in the presence of NH4+ were as high as 100% of the nitrogenase activity detected in the absence of NH4+. 3. Biochemical characterization of these nitrogen fixation (nif) derepressed mutants reveals that they fall into three classes. Three mutants (strains SK-24, 28 and 29), requiring glutamate for growth, synthesize nitrogenase and glutamine synthetase constitutively (in the presence of NH4+). A second class of mutants (strains SK-27 and 37) requiring glutamine for growth produces derepressed levels of nitrogenase activity and synthesized catalytically inactive glutamine synthetase protein, as determined immunologically. A third class of glutamine-requiring, nitrogenase-derepressed mutants (strain SK-25 and 26) synthesizes neither a catalytically active glutamine synthetase enzyme nor an immunologically cross-reactive glutamine synthetase protein. 4. F-prime complementation analysis reveals that the mutant strains SK-25, 26, 27, 37 map in a segment of the Klebsiella chromosome corresponding to the region coding for glutamine synthetase. Since the mutant strains SK-27 and SK-37 produce inactive glutamine synthetase protein, it is concluded that these mutations map within the glutamine synthetase structural gene.

Ammonia

[Studies of Nocardia pellegrino SN 5108 pigment mutants: reasons for differences in pigmentation (author's transl)].

Yellow and white mutants of the strains Nocardia pellegrino SN 5108 R have been isolated. Regarding their morphological and physiological properties, the mutants are identical with the wild type bacteria with the exception of their pigmentation and lipid composition. However, the pigment composition (number, Rf-values and spectra of the pigment components) of the yellow mutant is identical with that of the wild type; as a consequence, the modified pigmentation of the yellow mutant cannot be explained by an altered pigment synthesis. The wild type cells and the mutant SN 5108 G contain three main pigment components designated as I, II and III. Components II and III posses a marked indicator character and show a bathochromic shift in solutions of pH 12 or higher. Components II and III contain functional groups which are able to react with acetic acid yielding acetylated products; after acetylating, no bathochromic shift in alkali occurs. Intact cells of the wild type retain their orange-red pigmentation in buffer solution with a pH-value of 12 or higher. Cells of the yellow mutant, however, change the yellow color immediately after the alkali treatment to orange-red; this new color is identical with that of the wild type and can be changed to yellow by placing the cells into 1 N HCl. Regarding these facts it seems to be very probable that the functional groups of the pigment components II and III are differently bound in the wild type and mutant cells. In the mutant, they are accessible to OH- ions yielding a bathochromic shift while in the wild type cells, OH- ions are unable to provoke this shift. It seems to be also probable that different lipids in the two strains are responsible for the binding of the pigments. So far known, this is the first observation about the occurence of pigment mutants with an altered pigment binding site in the cells.

Binding Sites

A maize semi-dwarf mutant reveals a GRAS transcription factor involved in brassinosteroid signaling.

Brassinosteroids (BR) and gibberellins (GA) regulate plant height and leaf angle in maize (Zea mays). Mutants with defects in BR or GA biosynthesis or signaling identify components of these pathways and enhance our knowledge about plant growth and development. In this study, we characterized three recessive mutant alleles of GRAS transcription factor 42 (gras42) in maize, a GRAS transcription factor gene orthologous to the DWARF AND LOW TILLERING (DLT) gene of rice (Oryza sativa). These maize mutants exhibited semi-dwarf stature, shorter and wider leaves, and more upright leaf angle. Transcriptome analysis revealed a role for GRAS42 as a determinant of BR signaling. Analysis of the expression consequences from loss of GRAS42 in the gras42-mu1021149 mutant indicated a weak loss of BR signaling in the mutant, consistent with its previously demonstrated role in BR signaling in rice. Loss of BR signaling was also evident by the enhancement of weak BR biosynthetic mutant alleles in double mutants of nana plant1-1 and gras42-mu1021149. The gras42-mu1021149 mutant had little effect on GA-regulated gene expression, suggesting that GRAS42 is not a regulator of core GA signaling genes in maize. Single-cell expression data identified gras42 expressed among cells in the G2/M phase of the cell cycle consistent with its previously demonstrated role in cell cycle gene expression in Arabidopsis (Arabidopsis thaliana). Cis-acting natural variation controlling GRAS42 transcript accumulation was identified by expression genome-wide association study (eGWAS) in maize. Our results demonstrate a conserved role for GRAS42/SCARECROW-LIKE 28 (SCL28)/DLT in BR signaling, clarify the role of this gene in GA signaling, and suggest mechanisms of tillering and leaf angle control by BR.

Zea mays

HRAS promotes mutant NRAS-driven transformation with codon and allele specificity.

Wild-type RAS family members determine the signaling and therapeutic response in cancers driven by mutant HRAS and KRAS because they activate alternate RAS effector pathways. Here, we found that the requirement for wild-type RAS to support mutant NRAS-driven transformation correlated with codon-specific differences in GTP hydrolysis. NRAS with mutations at either Gly12 (G12X) or Gly13 (G13X), which retained the GDP-GTP cycling function, had modest autonomous transforming potential. In contrast, NRAS with GTP-locking mutations at Gln61 (Q61X mutants) was uncoupled from receptor tyrosine kinase (RTK) input, rendering wild-type RAS an obligate partner for RTK-stimulated signaling and oncogenesis. In RASless cells expressing mutant NRAS, reintroduction of wild-type HRAS was sufficient to restore signaling and transformation. Global dependency mapping in human cancer cells revealed functional partitioning, wherein mutant NRAS promoted MAPK signaling and wild-type HRAS promoted PI3K-AKT survival signaling. Consequently, allele-specific or pan-RAS(ON) inhibitors synergized with inhibitors of proximal RTK signaling or of wild-type HRAS or KRAS to overcome this signaling plasticity. Pan-RAS(ON) and HRAS inhibition was synergistic for all NRAS mutants tested, with Q61X mutants showing greater sensitivity. These findings define the signaling partnership between mutant NRAS and wild-type HRAS as a targetable vulnerability and provide a biochemical blueprint for dual RAS inhibition in NRAS-mutated malignancies.

Humans

Bactericidal activity of specific and azurophil granules from human neutrophils: studies with outer-membrane mutants of Salmonella typhimurium LT-2.

Extracts of specific granules and azurophil granules from human neutrophils were tested for their bactericidal activity against various lipopolysaccharide mutants of Salmonella typhimurium LT-2. Three purified granule populations, one specific and two azurophil, were obtained by isopycnic centrifugation of homogenized neutrophils. Each was extracted with 0.2 M acetate buffer (pH 4), and the extracts were dialyzed against phosphate-buffered saline (pH 7) to remove acetate. These extracts contained >/=84% of the lysozyme, lactoferrin, or myeloperoxidase initially present in the whole granules. The S. typhimurium mutants possessed Ra, Rc, Rd(1), Rd(2), or Re lipopolysaccharide. As the carbohydrate content of the lipopolysaccharide decreased, the bacteria became increasingly more susceptible to the bactericidal activity of all granule extracts. Bactericidal activity of the extracts was in the order: mixed (azurophil + specific) >/= azurophil >> specific. Specific granules were bacteriostatic for S through Rd(2) bacteria. They were bactericidal only for the Re mutant. Both azurophil granule populations were equally bactericidal. Extracts boiled for 30 min retained none of their bactericidal activity for any of the bacteria; however, they remained bacteriostatic for the deep rough (Rd(2), Re) mutants. Bactericidal activity was dependent upon pH, in that mixed and azurophil granule contents killed the smooth parent and Ra mutant best at pH 5, the Rc and Rd(1) mutants to the same degree at pH 5 to 8, and the deep rough mutants (Rd(2) and Re) best at pH 8. Specific granule contents were most bacteriostatic for S through Rd(2) bacteria at pH 5 and killed the Re mutant only at pH 8. Thus, as the S. typhimurium lipopolysaccharide content decreased, the bactericidal pH optimum increased. Killing by all extracts was dependent upon incubation temperature, with almost no bactericidal or bacteriostatic activity observed when bacteria and granule fractions were incubated on ice (2 degrees C) and plated immediately. Intermediate killing was observed at 22 degrees C. If bacteria were incubated with granule extracts at 2 degrees C, washed free of extract, suspended in medium without extract, and reincubated at 37 degrees C, killing was observed. This suggested that a component(s) of the extracts was sticking to the bacteria at 2 degrees C but killing only at 37 degrees C.

Blood Bactericidal Activity

An alkaline phosphatase mutant of Pseudomonas aeruginosa. 1. Effects of regulatory, structural, and environmental shifts on enzyme function.

An alkaline phosphatase mutant of Pseudomonas aeruginosa exhibiting both regulatory and catalytic changes was isolated. Under repression conditions (i.e. high inorganic phosphate (Pi)) the mutant culture produced an alkaline phosphatase (APase) displaying significant activity against both beta-glycerol phosphate (betaGP) and p-nitrophenyl phosphate (pNPP), while the wild type displayed no activity directed towards these substrates under the same conditions. In vivo, the mutant enzyme's ratio of specific activities was 45:1 in favour of betaGP versus pNPP, whereas this ratio was reversed to 1:9 betaGP versus pNPP for the same enzyme isolated from mutant cells. In addition, the kinetic parameters and stability requirements for the mutant-derived enzyme was altered in comparison with those of the wild type. A study of lipopolysaccharide (LPS) preparations from both the mutant and wild type indicated the mutant to be deficient in the core region of its LPS. The authors propose that the modifications in the catalytic activity of the mutant enzyme, demonstrated in vivo, are due to a change in the enzyme's microenvironment.

Alkaline Phosphatase

TET2-mutant myeloid cells mitigate Alzheimer's disease progression via CNS infiltration and enhanced phagocytosis in mice.

Clonal hematopoiesis (CH) is associated with many age-related diseases, but its interaction with Alzheimer's disease (AD) remains unclear. Here, we show that TET2-mutant CH is associated with a 47% reduced risk of late-onset AD (LOAD) in the UK Biobank, whereas other drivers of CH do not confer protection. In a mouse model of AD, transplantation of Tet2-mutant bone marrow reduced cognitive decline and β-amyloid plaque formation, effects not observed with Dnmt3a-mutant marrow. Bone-marrow-derived microglia-like cells were detected at an increased rate in Tet2-mutant marrow recipients, and TET2-mutant human induced pluripotent stem cell (iPSC)-derived microglia were more phagocytic and hyperinflammatory than DNMT3A-mutant or wild-type microglia. Strikingly, single-cell RNA sequencing (scRNA-seq) revealed that macrophages and patrolling monocytes were increased in brains of mice transplanted with Tet2-mutant marrow in response to chemokine signaling. These studies reveal a TET2-specific protective effect of CH on AD pathogenesis mediated by peripheral myeloid cell infiltration.

Animals

A pH-conditional mutant of Escherichia coli.

Mutants of Escherichia coli have been isolated that are able to grow on lactose at pH 7.0 but not at pH 8.1. One of these mutants was analyzed and shown to map in the Z region of the lactose operon. beta-Galactosidase (beta-D-galactoside galactohydrolase; EC 3.2.1.23) activity in toluenized mutant cells at pH 8.0 was one-tenth that at pH 7.0. Enzyme purified to near homogeneity from the pH-conditional mutant similarly exhibited pH-conditional activity under conditions where wild-type enzyme was unaffected over a pH range of 6.0-8.0. The pH-conditional beta-galactosidase was used in vivo as a probe for intracellular pH. We show that an internal pH of approximately 7.8-8.0 is maintained through an external pH range of 5.9-7.8. The phenotype of pH-conditional mutants was defined on medium with lactose as the sole carbon source. Under such conditions the gene product itself, beta-galactosidase, is required to maintain intracellular pH, since such maintenance is clearly energy-dependent. Therefore, we were able to recover a pH-conditional mutant in a cytoplasmic gene product. We predict that with any phenotype independent of energy production, however, pH-sensitive mutants will be recovered only in surface elements.

Cytoplasm

Alterations of spore coat processing and protein turnover in a Bacillus cereus mutant with a defective postexponential intracellular protease.

A mutant with an alteration in the major intracellular serine protease produced by postexponential Bacillus cereus was isolated by screening mutants defective in spore germination. The purified enzyme from the mutant is more labile to heat and alkaline pH than the protease from the wild type. Protease activity appears at the same time as in the wild type but only reaches 50% of the specific activity and decays more rapidly during sporulation. Coincident with the decay is a decrease in the rate of protein turnover. Generation of amino acids by turnover seems to be important for sporulation because the number of spores produced by the mutant is increased 4- to 10-fold by addition of casamino acids. As anticipated, the mutant produces spores that germinate poorly but, surprisingly, these spores are very deficient in coat protein. Coat antigen is present in cell extracts of mutant and wild type, however, both as large molecules not found on mature spores and as spore coat protein monomers. The large molecules rapidly disappear in a pulse chase experiment in the wild type with some increase in the coat monomers. In mutant extracts, however, this large coat antigen is slowly and improperly processed.

Antigens, Bacterial

Mechanisms of resistance to ceftazidime/avibactam in mutants derived in vitro from Klebsiella pneumoniae producing OXA-48-like enzymes.

OBJECTIVES: To generate in vitro ceftazidime-avibactam-resistant mutants derived from Klebsiella pneumoniae producing OXA-48 or OXA-48 derivatives OXA-131 and OXA-232 carbapenemases, to define their antimicrobial susceptibility phenotype and to analyse mutations potentially involved in resistance to ceftazidime-avibactam. METHODS: Mutants were obtained by plating overnight bacterial cultures on Mueller-Hinton agar plates containing increasing concentrations of ceftazidime-avibactam (0.5/4-32/4 mg/L). MICs were determined using Sensititre™ DKMNG panels. Whole-genome sequencing of 8 parental strains and 31 mutant derivatives was performed with Illumina. RESULTS: All parental strains were susceptible to ceftazidime-avibactam (MIC ≤ 0.5/4-2/4 mg/L) and either susceptible or resistant to meropenem (MIC 0.5 to >16 mg/L) and imipenem (MIC ≤ 0.5 to >16 mg/L). MICs of ceftazidime-avibactam for the mutants increased up to 4 to >16 mg/L, while MICs of meropenem and imipenem for most mutants either increased up to >16 mg/L or remained unchanged. Whole-genome sequencing of the mutants identified alterations in genes coding for proteins related to AcrAB-TolC (AcrB, AcrR), PBPs (PBP2, PBP3), porins (OmpK36, EnvZ) or the stress or stringent responses (RseB, CpxA, SpoT). No mutations were detected in genes coding for OXA-48-like enzymes or other β-lactamases. CONCLUSIONS: Ceftazidime-avibactam can select in vitro mutants of OXA-48-like carbapenemase-producing K. pneumoniae resistant to this combination and, in some cases, also to carbapenems. No mutations related to ceftazidime-avibactam resistance were found in genes coding OXA-48-like enzymes, but they were detected in genes related to active efflux, PBPs, permeability or proteins of the stress and stringent responses.

Ceftazidime

Suppression of LKB1-mutant lung adenocarcinoma by natural killer cells from females.

BACKGROUND: This study addressed the enigma of sex differences in smoking-related lung cancer, particularly focusing on the low LKB1 mutation frequency in female patients with lung adenocarcinoma. METHODS: Sex bias was studied with a genetically engineered mouse model and various tail-vein injection models. Immune cells were analyzed by antibody-depletion study, flow cytometry, and immunofluorescence. The relevance of our findings to human disease was validated by evaluating various lung adenocarcinoma datasets. All statistical tests are 2-sided. RESULTS: A statistically significant percentage of females are resistant to LKB1-mutant tumor formation in our models, reflecting this sex difference in humans. Natural killer (NK) cells were identified as a critical factor in this sex-biased response. This sex difference was observed primarily in LKB1-mutant lung adenocarcinoma, probably due to their low major histocompatibility complex class I level, making them the ideal target for NK cells through the missing-self recognition. Although females resistant to LKB1-mutant lung adenocarcinoma formation did not have enhancement of any specific NK subpopulation, our immunofluorescence analysis revealed high numbers of NKs in female lungs even with the presence of LKB1-mutant lung adenocarcinoma. Our gene set enrichment analysis of The Cancer Genome Atlas-lung adenocarcinoma dataset also showed that female LKB1-mutant lung adenocarcinoma patients have a stronger NK-mediated response after adjusting for other male-female differences using the LKB1 wild-type lung adenocarcinoma dataset. CONCLUSION: Females have a stronger NK-mediated response against LKB1-mutant lung adenocarcinoma, which was present in our mouse model and the human lung adenocarcinoma dataset. This study revealed a novel role of NK cells in suppressing LKB1-mutant lung adenocarcinoma in females, which should be assessed in the clinical setting in the future.

Killer Cells, Natural

A mutant ATP synthetase of Escherichia coli with an altered sensitivity to N,N' -dicyclohexylcarbodiimide: characterization in native membranes and reconstituted proteoliposomes.

Dicyclohexylcarbodiimide-resistant mutants of Escherichia coli were isolated and characterized In one mutant the unc genes and affects the membrane-integrated part of the ATP synthetase. The sensitivity of ATP synthetase functions to N,N' -dicyclohexylcarbodiimide was compared in wild-type and mutant membranes. The membrane-integrated part of the wild-type ATP synthetase is highly sensitive to ATP-dependent membrane energization and restoration of lactate-dependent energization of ATPase-depleted membranes. In mutant membranes this concentration has only a slight effect on these activities whereas a severe inhibition is obtained at 200 muM. Using the highly water-soluble 1-ethyl-3(3-dimethylaminopropyl)-carbodiimide theactivities of wild-type and mutant membranes are inhibited to the same extent. TheATP synthetase of wild-type and mutant was partially purified and incorporated muM. Uinto liposomes. These showed an uncoupler-sensitive ATP-32Pi exchange and ATP-dependent quenching of acridine-dye fluorescence. The activities of mutant and wild-type proteoliposomes exhibit the same pattern of sensitivity to dicyclohexylcarbodiimide as the corresponding membranes.

Adenosine Diphosphate

Assimilatory sulfate reduction in an Escherichia coli mutant lacking thioredoxin activity.

An investigation of sulfate reduction in B tsnC*7004, a mutant of Escherichia coli lacking thioredoxin, is reported. Although thioredoxin is indispensable for the adenosine 3'-phosphate 5'-phosphosulfate (PAPS) sulfotransferase reaction under the usual conditions of assay in extracts of wild-type cells, the mutant grew as well as the wild type on sulfate, indicating that sulfate reduction is not rate limiting for growth. Another cofactor for the PAPS sulfotransferase reaction was found in extracts of the mutant that is absent from wild type cells. This cofactor was indistinguishable from thioredoxin in molecular weight but had a slightly different isoelectric point, allowing a separation of the two types of molecules by isoelectric focusing. Whereas electrons from nicotinamide adenine dinucleotide phosphate, reduced form, could be transferred via thioredoxin reductase or via glutathione and glutathione reductase to reduce thioredoxin in extracts of wild-type cells, electrons from nicotinamide adenine dinucleotide, reduced form, could only be transferred to the cofactor of the mutant via glutathione and glutathione reductase. All of the other available mutants blocked in sulfate reduction in E. coli contained normal levels of thioredoxin. The "PAPS reductase" mutant is shown to be blocked in the PAPS sulfotransferase reaction. We conclude that the cofactor found in mutant B tsnC*7004 is probably a mutated thioredoxin with an amino acid substitution that alters the isoelectric point and the reactivity with thioredoxin reductase.

Bacterial Proteins