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Biology subjects

Haase, N.

Publications and source records attributed to Haase, N..

4 recordsLinked to original sources

Intestinal interstitial fluid isolation provides novel insight into the human host-microbiome interface

AimsThe gastrointestinal (GI) tract is composed of distinct subregions which exhibit segment-specific differences in microbial colonization and (patho)physiological characteristics. Gut microbes can be collectively considered as an active endocrine organ. Microbes produce metabolites, which can be taken up by the host and can actively communicate with the immune cells in the gut lamina propria with consequences for cardiovascular health. Variation in bacterial load and composition along the GI tract may influence the mucosal microenvironment and thus be reflected its interstitial fluid (IF). Characterization of the segment-specific microenvironment is challenging and largely unexplored because of lack of available tools. Method and ResultsHere, we developed methods, namely tissue centrifugation and elution, to collect IF from the mucosa of different intestinal segments. These methods were first validated in rats and mice, and the tissue elution method was subsequently translated for use in humans. These new methods allowed us to quantify microbiota-derived metabolites, mucosa-derived cytokines, and proteins at their site-of-action. Quantification of short-chain fatty acids showed enrichment in the colonic IF. Metabolite and cytokine analyses revealed differential abundances within segments, often significantly increased compared to plasma, and proteomics revealed that proteins annotated to the extracellular phase were site-specifically identifiable in IF and were differentially expressed when compared to matched serum, all suggesting local synthesis. ConclusionCollection of IF from defined segments and the direct measurement of mediators at the site-of-action in rodents and humans bypasses the limitations of indirect analysis of fecal samples or serum, providing direct insight into this understudied compartment.

microbiology↗

Decomposing bulk signals to reveal hidden information in processive enzyme reactions: A case study in mRNA translation

Processive enzymes, such as polymerases or ribosomes, are often studied in en-semble or bulk experiments through the monitoring of time-dependent signals, such as fluorescence time traces. However, ensemble signals are a superposition of the time traces of all molecules in the reaction and can exhibit less distinct features than individual single-molecule signals due to the stochasticity of biomolecular processes. Here, we demonstrate that under certain conditions, bulk signals from processive reactions can still be decomposed to reveal hidden information about individual reaction steps. Using mRNA translation as a case study for processive biochemical reactions, we explore the limits of least-squares approaches for ensemble fluorescence signal decomposition. Specifically, we show that decomposing a noisy ensemble signal generated by the translation of mRNAs containing more than a few codons represents an ill-posed problem, which can be addressed through Tikhonov regularization. Our findings can help to increase the information content extracted from bulk experiments, thereby expanding the range of these time- and cost-efficient methods.

biochemistry↗

Utilizing high resolution ribosome profiling for the global investigation of gene expression in Chlamydomonas reinhardtii

Ribosome profiling (Ribo-seq) is a powerful method for the deep analysis of translation mechanisms and regulatory circuits during gene expression. Here, we established an optimized and high resolution Ribo-seq protocol for the unicellular model alga Chlamydomonas reinhardtii (Chlamydomonas). Comparing different nuclease treatments for the extraction and sequencing of ribosome-protected fragments (RPFs) and parallel RNA-seq, provided deep insight into translational dynamics and post-transcriptional control of gene expression, thoroughly covering more than 10,000 different transcripts. Our high quality Ribo-seq protocol captures the 3-nucleotide movement of elongating ribosomes along nuclear and chloroplast transcripts. Detailed analysis of the ribosomal offsets on transcripts uncovers presumable transition states during translocation of elongating ribosomes within the 5- and 3-sections of transcripts and features of eukaryotic translation termination. These offsets reveal drastic differences between the nature of cytosolic and chloroplast translation mechanisms. Chloroplast translation is further characterized by heterogenous RPF size distribution. We found that local accumulation of small RPFs correlates with local slowdown of psbA translation, possibly revealing an uncharacterized regulator step during PsbA/D1 synthesis. Further analyses of RPF distribution along specific cytosolic transcripts revealed characteristic patterns of translation elongation exemplified for the major light harvesting complex proteins, LHCs. Moreover, our Ribo-seq data can be utilized to survey coding sequence annotations and the expression preference of alternatively spliced transcripts in Chlamydomonas. We made these features easily accessible for the research community by attaching our Ribo-seq data to the most recent Chlamydomonas reference genome.

systems biology↗

Disturbed trophoblast transition links preeclampsia progression from placenta to the maternal syndrome

Pre-eclampsia (PE) is a syndrome that affects multiple organ systems and is the most severe hypertensive disorder in pregnancy. It frequently leads to preterm delivery, maternal and fetal morbidity and mortality and life-long complications1. We currently lack efficient screening tools2, 3 and early therapies4, 5 to address PE. To investigate the early stages of early onset PE, and identify candidate markers and pathways, we performed spatio-temporal multi-omics profiling of human PE placentae and healthy controls and validated targets in early gestation in a longitudinal clinical cohort. We used a single-nuclei RNA-seq approach combined with spatial proteo- and transcriptomics and mechanistic in vitro signalling analyses to bridge the gap from late pregnancy disease to early pregnancy pathomechanisms. We discovered a key disruption in villous trophoblast differentiation, which is driven by the increase of transcriptional coactivator p300, that ultimately ends with a senescence-associated secretory phenotype (SASP) of trophoblasts. We found a significant increase in the senescence marker activin A in preeclamptic maternal serum in early gestation, before the development of clinical symptoms, indicating a translation of the placental syndrome to the maternal side. Our work describes a new disease progression, starting with a disturbed transition in villous trophoblast differentiation. Our study identifies potential pathophysiology-relevant biomarkers for the early diagnosis of the disease as well as possible targets for interventions, which would be crucial steps toward protecting the mother and child from gestational mortality and morbidity and an increased risk of cardiovascular disease later in life.

systems biology↗