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Hernandez, H. H.

Publications and source records attributed to Hernandez, H. H..

2 recordsLinked to original sources

Beyond the greenhouse: coupling environmental and salt stress response reveals unexpected global transcriptional regulatory networks in Salicornia bigelovii

Soil salinity is an increasing threat to global food production systems. As such, there is a need for salt tolerant plant model systems in order to understand salt stress regulation and response. Salicornia bigelovii, a succulent obligatory halophyte, is one of the most salt tolerant plant species in the world. It possesses distinctive characteristics that make it a candidate plant model for studying salt stress regulation and tolerance, showing promise as an economical non-crop species that can be used for saline land remediation and for large-scale biofuel production. However, available S. bigelovii genomic and transcriptomic data are insufficient to reveal its molecular mechanism of salt tolerance. We performed transcriptome analysis of S. bigelovii flowers, roots, seeds and shoots tissues cultivated under desert conditions and irrigated with saline aquaculture effluent. We identified a unique set of tissue specific transcripts present in this non-model crop. A total of 66,943 transcripts (72.63%) were successfully annotated through the GO database with 18,321 transcripts (27.38%) having no matches to known transcripts. Excluding non-plant transcripts, differential expression analysis of 49,914 annotated transcripts revealed differentially expressed transcripts (DETs) between the four tissues and identified shoots and flowers as the most transcriptionally similar tissues relative to roots and seeds. The DETs between above and below ground tissues, with the exclusion of seeds, were primarily involved in osmotic regulation and ion transportation. We identified DETs between shoots and roots implicated in salt tolerance including SbSOS1, SbNHX, SbHKT6 upregulated in shoots relative to roots, while aquaporins (AQPs) were up regulated in roots. We also noted that DETs implicated in osmolyte regulation exhibit a different profile among shoots and roots. Our study provides the first report of a highly upregulated HKT6 from S. bigelovii shoot tissue. Furthermore, we identified two BADH transcripts with divergent sequence and tissue specific expression pattern. Overall, expression of the ion transport transcripts suggests Na+ accumulation in S. bigelovii shoots. Our data led to novel insights into transcriptional regulation across the four tissues and identified a core set of salt stress-related transcripts in S. bigelovii.

plant biology

Optimal microbial pathway variants can be determined by large-scale bioenergetic evaluation in syntrophic propionate oxidation

The complete understanding of microbial propionate oxidation in syntrophy with hydrogenotrophic methanogenesis remains elusive due to uncertainties in pathways and mechanisms for interspecies electron transfer (IET). Possible pathway variants differ in their intermediate metabolites, on which electron carriers are involved and in which steps are coupled to (and to how many) proton translocations. In this work, a systematic methodology was developed (based on sound biochemical, physiological and bioenergetic principles) to evaluate the feasibility and net ATP yield of large sets of pathway variants under different physiological and environmental conditions. A pathway variant is deemed feasible under given conditions only if all pathway reaction steps have non-positive Gibbs energy change and if all the metabolite concentrations remain within an acceptable physiological range (10-6 to 10-2 M). Several million combinations of pathway variants and parameters/conditions were evaluated for propionate oxidation, providing an unprecedented mechanistic insight into its biochemical and bioenergetic landscape. Propionate oxidation via lactate appeared as the most ATP yielding pathway under most of the conditions evaluated. Results under typical methanogenic conditions indicate that syntrophic propionate oxidation can sustain life only at hydrogen partial pressures within the range of 1.2 to 4 Pa. These extremely low concentrations constitute a kinetic impossibility and strongly suggest for IET mechanisms other than dissolved hydrogen. ImportanceIn this work an original methodology was developed that quantifies the bioenergetically and physiologically feasible net ATP yields for large numbers of microbial metabolic pathways and their variants under different conditions. This ensures global optimality in finding the pathway variant(s) leading to the highest ATP yield. The methodology is especially relevant to hypothesise which microbial pathway variants are most likely to prevail in microbial ecosystems under high selective pressure for efficient metabolic energy conservation. Syntrophic microbial oxidation of propionate to acetate has extremely low energy available and requires very high metabolic efficiency in order to sustain life. Our results bring mechanistic insights into the optimum pathway variants and the impact of environmental conditions on the ATP yields and other metabolic bottlenecks. Additionally, our results conclude that IET mechanisms other than hydrogen must exist to simultaneously sustain the growth of both propionate oxidisers and hydrogenotrophic methanogens.

bioengineering