Martín Vargas-Suárez
National Autonomous University of Mexico
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Publication
Featured researches published by Martín Vargas-Suárez.
Journal of Bioenergetics and Biomembranes | 2001
Concepción Bravo; Martín Vargas-Suárez; Sara Rodríguez-Enríquez; Herminia Loza-Tavera; Rafael Moreno-Sánchez
The mechanisms involved in the metabolic changes induced by cold stress in isolated rat liver mitochondria were studied. Respiration, ATP synthesis, and membrane potential as well as the contents of several metabolites were determined in liver mitochondria from cold-exposed rats. At different times of cold exposure, the force–flux relationships showed net variation in flux (enhanced respiration, diminished ATP synthesis) with no associated variation in force (H+ gradient); this suggested that decoupling rather than classical uncoupling was involved in the effects of cold stress. The flux control coefficient of the H+ leak on basal respiration was slightly increased by 380 h of cold exposure. Cold stress also induced a diminution in total membrane fatty acids, Zn2+, Fe3+, ATP, and ADP/O ratios; the content of cytochromes c + c1 and b oscillated. The contents of Ca2+, Na+, Pi, and cytochromes a + a3 were not affected, whereas matrix ADP, AMP, K+, and Mg2+ were markedly increased. Basal and oleic acid-stimulated respiration of mitochondria from cold-stressed rats was inhibited by GDP, carboxyatractyloside, or albumin. These agents did not affect basal respiration in control mitochondria. Western blot analysis showed enhanced expression of a protein of about 35 kDa, presumably the uncoupling protein 2, induced by long-term cold exposure. The overall data suggest that cold stress promoted decoupling of oxidative phosphorylation, and hence, changes in several matrix metabolites, by increasing free fatty acids and the UCP2 content.
Applied and Environmental Microbiology | 2016
Joyce Álvarez-Barragán; Lilianha Domínguez-Malfavón; Martín Vargas-Suárez; Ricardo González-Hernández; Guillermo Aguilar-Osorio; Herminia Loza-Tavera
ABSTRACT Polyurethane (PU) is widely used in many aspects of modern life because of its versatility and resistance. However, PU waste disposal generates large problems, since it is slowly degraded, there are limited recycling processes, and its destruction may generate toxic compounds. In this work, we isolated fungal strains able to grow in mineral medium with a polyester PU (PS-PU; Impranil DLN) or a polyether PU (PE-PU; Poly Lack) varnish as the only carbon source. Of the eight best Impranil-degrading strains, the six best degraders belonged to the Cladosporium cladosporioides complex, including the species C. pseudocladosporioides, C. tenuissimum, C. asperulatum, and C. montecillanum, and the two others were identified as Aspergillus fumigatus and Penicillium chrysogenum. The best Impranil degrader, C. pseudocladosporioides strain T1.PL.1, degraded up to 87% after 14 days of incubation. Fourier transform infrared (FTIR) spectroscopy analysis of Impranil degradation by this strain showed a loss of carbonyl groups (1,729 cm−1) and N—H bonds (1,540 and 1,261 cm−1), and gas chromatography-mass spectrometry (GC-MS) analysis showed a decrease in ester compounds and increase in alcohols and hexane diisocyanate, indicating the hydrolysis of ester and urethane bonds. Extracellular esterase and low urease, but not protease activities were detected at 7 and 14 days of culture in Impranil. The best eight Impranil-degrading fungi were also able to degrade solid foams of the highly recalcitrant PE-PU type to different extents, with the highest levels generating up to 65% of dry-weight losses not previously reported. Scanning electron microscopy (SEM) analysis of fungus-treated foams showed melted and thinner cell wall structures than the non-fungus-treated ones, demonstrating fungal biodegradative action on PE-PU. IMPORTANCE Polyurethane waste disposal has become a serious problem. In this work, fungal strains able to efficiently degrade different types of polyurethanes are reported, and their biodegradative activity was studied by different experimental approaches. Varnish biodegradation analyses showed that fungi were able to break down the polymer in some of their precursors, offering the possibility that they may be recovered and used for new polyurethane synthesis. Also, the levels of degradation of solid polyether polyurethane foams reported in this work have never been observed previously. Isolation of efficient polyurethane-degrading microorganisms and delving into the mechanisms they used to degrade the polymer provide the basis for the development of biotechnological processes for polyurethane biodegradation and recycling.
Journal of Plant Physiology | 1996
Martín Vargas-Suárez; A. Rincón-Guzmán; Carlos Mújica-Jiménez; Rosario A. Muñoz-Clares; E. Sánchez de Jiménez
Summary To learn about the biochemical processes underlying the induction of photomixotrophia in maize cell culture, maize calli were cultured in medium containing either glucose or starch as the carbon source. The effect of a CO 2 -enriched atmosphere on different parameters was tested. Levels of chlorophyll and CO 2 -fixing enzymes were measured to assess the greening process concomitant to histological observations of chloroplast development. Both starch and glucose promoted higher chlorophyll accumulation in callus cultured under light than sucrose. Histological analysis of green callus grown on glucose-containing medium revealed the formation of poorly developed chloroplasts containing starch grains, whereas in starch medium a large number of elongated chloroplasts containing thylakoids were observed. Exposure of these calli to a CO 2 -enriched atmosphere enhanced the plastid differentiation process up to mature chloroplasts with grana and intergranal thylakoids. Western-blot analysis demonstrated the presence of CO 2 -fixing enzymes, Rubisco (EC 4.1.1.39) and PEP carboxylase (EC 4.1.1.31), as well as Rubisco activase in greening callus. Rubisco and PEP carboxylase activities showed large values when starch was the carbon source in the medium. Results of histological analysis and a/b chlorophyll ratios indicated that the chloroplasts formed were of the C 3 -type. PEP carboxylase kinetic properties were also consistent with a C 3 -type enzyme involved in anaplerotic functions. It is concluded that under the experimental conditions tested, starch plus CO 2 -enriched atmosphere are the best carbon source for inducing and supporting photomixotrophia in maize cultures, as indicated by several biochemical parameters.
Applied and Environmental Microbiology | 2018
Claudia Julieta Solís-González; Lilianha Domínguez-Malfavón; Martín Vargas-Suárez; Itzel Gaytán; Miguel A. Cevallos; Luis Lozano; M. Javier Cruz-Gómez; Herminia Loza-Tavera
ABSTRACT The molecular mechanisms underlying the biodegradation of N-methylpyrrolidone (NMP), a widely used industrial solvent that produces skin irritation in humans and is teratogenic in rats, are unknown. Alicycliphilus sp. strain BQ1 degrades NMP. By studying a transposon-tagged mutant unable to degrade NMP, we identified a six-gene cluster (nmpABCDEF) that is transcribed as a polycistronic mRNA and encodes enzymes involved in NMP biodegradation. nmpA and the transposon-affected gene nmpB encode an N-methylhydantoin amidohydrolase that transforms NMP to γ-N-methylaminobutyric acid; this is metabolized by an amino acid oxidase (NMPC), either by demethylation to produce γ-aminobutyric acid (GABA) or by deamination to produce succinate semialdehyde (SSA). If GABA is produced, the activity of a GABA aminotransferase (GABA-AT), not encoded in the nmp gene cluster, is needed to generate SSA. SSA is transformed by a succinate semialdehyde dehydrogenase (SSDH) (NMPF) to succinate, which enters the Krebs cycle. The abilities to consume NMP and to utilize it for growth were complemented in the transposon-tagged mutant by use of the nmpABCD genes. Similarly, Escherichia coli MG1655, which has two SSDHs but is unable to grow in NMP, acquired these abilities after functional complementation with these genes. In wild-type (wt) BQ1 cells growing in NMP, GABA was not detected, but SSA was present at double the amount found in cells growing in Luria-Bertani medium (LB), suggesting that GABA is not an intermediate in this pathway. Moreover, E. coli GABA-AT deletion mutants complemented with nmpABCD genes retained the ability to grow in NMP, supporting the possibility that γ-N-methylaminobutyric acid is deaminated to SSA instead of being demethylated to GABA. IMPORTANCE N-Methylpyrrolidone is a cyclic amide reported to be biodegradable. However, the metabolic pathway and enzymatic activities for degrading NMP are unknown. By developing molecular biology techniques for Alicycliphilus sp. strain BQ1, an environmental bacterium able to grow in NMP, we identified a six-gene cluster encoding enzymatic activities involved in NMP degradation. These findings set the basis for the study of new enzymatic activities and for the development of biotechnological processes with potential applications in bioremediation.
Journal of Plant Physiology | 2007
Hilda A. Zavaleta-Mancera; Humberto López-Delgado; Herminia Loza-Tavera; Martha Elena Mora-Herrera; Claudia Trevilla‐García; Martín Vargas-Suárez; Helen J. Ougham
Biochimie | 2004
A. Ayala-Ochoa; Martín Vargas-Suárez; Herminia Loza-Tavera; Patricia León; L.F. Jiménez-García; E. Sánchez-de-Jiménez
Journal of Experimental Botany | 2004
Martín Vargas-Suárez; Alfredo Ayala-Ochoa; Jessica Lozano-Franco; Itzhel García-Torres; Alberto Diaz-Quiñonez; Vianney Ortiz-Navarrete; Estela Sánchez-de-Jiménez
Biochimie | 2006
Herminia Loza-Tavera; Martín Vargas-Suárez; E. Díaz-Mireles; M.E. Torres-Márquez; L.E. González de la Vara; R. Moreno-Sánchez; Wilhelm Gruissem
Biochimie | 2013
Martín Vargas-Suárez; Alina Castro-Sánchez; Gabriela Toledo-Ortiz; Luis E. González de la Vara; Elpidio García; Herminia Loza-Tavera
Journal of Applied Polymer Science | 2016
Luis Fernando Pérez-Lara; Martín Vargas-Suárez; Néstor Noé López-Castillo; Modesto Javier Cruz-Gómez; Herminia Loza-Tavera