Search bioRxiv⌕ Search

Biology subjects

Hansen, S. C.

Publications and source records attributed to Hansen, S. C..

3 recordsLinked to original sources

Probiotic biogeography and sepsis prevention in the neonatal intestine

Neonatal infection is one of the leading causes of neonatal morbidity and mortality worldwide, particularly in those born prematurely or with low birth weight. Probiotic bacteria have been demonstrated to protect against the development of neonatal intestinal dysbiosis and are widely used in peri- and post-natal clinical settings. However, formulations and efficacy are highly variable, highlighting a critical gap in the current understanding of the mechanistic underpinnings of successful probiotic interventions in this population. Furthermore, current studies on probiotic efficacy largely rely on indirect or relative readouts of intestinal bacterial burden. Herein, we directly mapped the biogeography of intestinal colonization and quantify the probiotic effects of Escherichia coli Nissle 1917 (EcN) and Ligilactobacillus murinus strain V10 against Klebsiella pneumoniae dysbiosis across the span of the neonatal murine intestine. Despite substantial differences in biogeography within the intestine, both EcN and L. murinus V10 significantly reduced K. pneumoniae colonization and mortality from K. pneumoniae sepsis, with EcN doing so much more robustly. EcNs probiotic effect was partially dependent on its ability to respire oxygen. Contrary to the dominant paradigm and practice in the probiotic field, combining multiple probiotic strains did not necessarily increase efficacy. Simultaneous treatment with EcN and L. murinus V10 was less effective than EcN treatment alone at preventing death from sepsis. These results highlight important variables which must be taken into account in the design of effective future probiotic intervention strategies. IMPORTANCEIn this work we use a mouse model of late-onset neonatal sepsis (LOS) to rigorously test fundamental assumptions that underlie the current paradigm for understanding the impact of probiotics on intestinal disease. We demonstrate that two distantly related probiotic bacteria (Escherichia coli Nissle 1917 and Ligilactobacillus murinus V10) can each effectively reduce both intestinal colonization and death caused by the LOS pathobiont Klebsiella pneumoniae, acting by distinct ecological and molecular mechanisms. Our results provide new evidence that will be critical for designing and implementing safe and effective probiotic treatment regimens for LOS, a devastating and difficult to treat disease. More broadly, our results show that ecological principles are key to understanding how interventions that modulate the gut microbiome work, and that some of the assumptions underlying current interventions need to be reevaluated, especially when it comes to combining multiple probiotic strains and species.

microbiology↗

Whole genome analyses of the endangered Northern abalone (Haliotis kamtschatkana) reveal population differentiation and a genomic signature of a dramatic population decline

Despite widespread declines of many wildlife species, the effects of population decline on the genetic health and the recovery potential of affected species is still poorly understood, especially beyond a few charismatic species. The Northern abalone (or Pinto abalone; Haliotis kamtschatkana) is a marine gastropod mollusc of social, cultural and historical economic importance in the Pacific Northwest of North America that experienced a decline in population density due to commercial harvest and is currently listed as endangered in Canada under the Species at Risk Act. Previous genetic investigations based on microsatellites and reduced-representation approaches concluded that Northern abalone is panmictic throughout its range, from Alaska to California, and identified high levels of genetic variation with no indication of population decline. Using whole genome resequencing data from Northern abalone sampled across the northern part of the species range, we instead identified both: 1) significant differentiation between two genetic groups, albeit very concentrated in the genome; and 2) a strong signature of a dramatic population decline, without evidence of genetic inbreeding. Even though demographic reconstructions showed a timid signal of recent population expansion, the pervasive excess of rare alleles identified (including a high occurrence of singletons) may pose a genetic load risk, potentially hindering the species recovery. We also found evidence of historical, rather than current, connectivity throughout the area investigated. These results are important for management decisions and highlight the utility of whole genome data in conservation, especially in species with historically large effective population sizes like the Northern abalone.

evolutionary biology↗

Conformational dynamics and target-dependent myristoyl switch of calcineurin B homologous protein 3

Calcineurin B homologous protein 3 (CHP3) is an EF-hand Ca2+-binding protein involved in regulation of cancerogenesis, cardiac hypertrophy and neuronal development via interactions with sodium/proton exchangers (NHEs) and signalling proteins. CHP3 binds Ca2+ with micromolar affinity providing the basis to respond to intracellular Ca2+ signals. Ca2+ binding and myristoylation are important for CHP3 function but the underlying molecular mechanism remained elusive. Here, we show that Ca2+ binding and myristoylation independently affect conformational dynamics and functions of human CHP3. Ca2+ binding increased flexibility and hydrophobicity of CHP3 indicative of an open conformation. CHP3 in open Ca2+-bound conformation had higher affinity for NHE1 and associated stronger with lipid membranes compared to the closed Mg2+-bound conformation. Myristoylation enhanced flexibility of CHP3 and decreased its affinity to NHE1 independently of the bound ion, but did not affect its binding to lipid membranes. The data exclude the proposed Ca2+-myristoyl switch for CHP3. Instead, they document a Ca2+-independent exposure of the myristoyl moiety induced by binding of the target peptide to CHP3 enhancing its association to lipid membranes. We name this novel regulatory mechanism "target-dependent myristoyl switch". Taken together, the interplay of Ca2+ binding, myristoylation and target binding allows for a context-specific regulation of CHP3 functions.

biochemistry↗