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Hao, F.

Publications and source records attributed to Hao, F..

7 recordsLinked to original sources

Bacterial sensing via Neuronal Receptor Initiates Gut Mitochondrial Surveillance for Host Adaptation

Animals exist within a microbial world and are constantly challenged by pathogen infections. Microbe-mediated protection for against infection is the survival strategy for host. However, elucidating specific microbial molecules and understanding how they interact with the hosts intracellular surveillance system for protection is difficult but highly desirable. Here, by establishing "pathogen-like-bacteria" screening system, we identified E. coli mutants, including {Delta}ymcB, that act as "pathogen-like-bacteria" to defend animals against Pseudomonas aeruginosa PA14 infection by activating UPRmt. Additionally, through genetic screening, we identified neuronal transmembrane protein, MDSS-1, that is crucial for sensing {Delta}ymcB and activating intestinal UPRmt. Moreover, we demonstrated that MDSS-1 functions as a receptor in ASE neurons, responsible for detecting {Delta}ymcB. It then communicates microbial signals through neuropeptides, GPCR, Wnt signaling and endopeptidase inhibitors to trigger intestinal UPRmt, that defends the host animals against infections. Furthermore, Constitutionally activation of MDSS-1 in ASE neurons is sufficient to trigger intestinal UPRmt in animals, resulting in protection against infection. Our study uncovers an intriguing mechanism involving intracellular mitochondrial surveillance, where neuron-intestine crosstalk originates from ASE neurons to detect bacteria and combat pathogens. This study identifies a bacteria-sensing mechanism in neurons that regulates intestinal mitochondrial surveillance pathway for host adaptation. HighlightsO_LIEstablishment of "pathogen-like-bacteria" screening system in C. elegans C_LIO_LI{Delta}ymcB promotes animal defend against infections via triggering UPRmt C_LIO_LINeuronal MDSS-1, a single transmembrane protein, detects "pathogen-like-bacteria" C_LIO_LIActivated-MDSS-1 induces distant UPRmt via inter-tissue communication factors C_LI

physiology↗

Maternal diet alters offspring early life host-microbiota communication through goblet cells, resulting in long-lasting diseases susceptibility

A crucial early-life developmental phase regulates microbiome settling while establishing critical and long-lasting immune and metabolic processes. During this period, the influence of select components of maternal diet on offspring microbiota and health remains largely unknown. To investigate the potential transgenerational impact of maternal exposure to microbiota-disrupting factors, dams were subjected prior breeding to dietary emulsifiers, known to directly perturb the microbiota. Such maternal exposure induced early-life microbiota alterations in offspring which associated with long-lasting susceptibility to diet-induced obesity and intestinal inflammation. These detrimental effects were entirely prevented by early-life microbiota normalization through cross-fostering procedures. Mechanistically, maternal emulsifier exposure induces strong offsprings impairment in goblet cells-mediated host-microbiota communication which is central in driving the observed long-lasting deleterious effects. To conclude, this study underscores the central role played by maternal intake of microbiota-disrupting agents on the next generations microbiota, with long lasting consequences for intestinal and metabolic health.

microbiology↗

Comprehensive analyses of 1771 transcriptome from seven tissues enhance genetic and biological interpretations of maize complex traits

By analyzing 1771 RNA-seq datasets from seven tissues in a maize diversity panel, we explored the landscape of multi-tissue transcriptome variation and evolution patterns of tissue-specific genes, and built a comprehensive multi-tissue gene regulation atlas to understand the genetic regulation of maize complex trait. Using transcriptome-wide association analysis, we linked tissue-specific expression variation of 45 genes to variation of 11 agronomic traits. Through integrative analyses of tissue-specific gene regulatory variation with genome-wide association studies, we detected relevant tissue types and candidate genes for a number of agronomic traits, including leaf during the day for anthesis-silking interval (GRMZM2G093210), leaf during the day for kernel Zeinoxanthin level (GRMZM2G143202), and root for ear height (GRMZM2G700665), highlighting the contribution from tissue-specific gene expression to variation of agronomic trait. Our findings provide novel insights into the genetic and biological mechanisms underlying complex traits in maize, and the multi-tissue regulatory atlas serves as a primary source for biological interpretation, functional validation, and genomic improvement of maize.

genetics↗

Polygenic basis of strong and rapid flowering time response to environment perturbations in wild Arabidopsis thaliana population

Despite the importance in understanding the impact of climate change, the genetics of rapid response to changing environments and its role in adaptive evolution remains elusive. Here, we studied flowering time response to environment changes using 514 Arabidopsis thaliana worldwide accessions with re-sequencing genomes and flowering time measurements from ten unique environments with variable temperature, drought, daylight and competition stresses. We revealed a polygenic basis of flowering time mean and plasticity, underpinned by 52 mean and plasticity QTL. Widespread interaction between mean QTL, polygenic background and surrounding environments considerably altered the amount of additive genetic variance and allelic effects of detected QTL. This caused variability in phenotype plasticity and across environment variation in genetic variance, resulting in rapid flowering time response to environment perturbations. In addition, the plastic alleles showed a higher correlation with the environment factors than that from randomly sampled alleles, suggesting a potential role in climate adaptation. We therefore proposed a polygenic interaction model, whereby large effect QTL and polygenic background simultaneously interacted with the surrounding environment, underlying rapid response to changing environments. Results from our study thus provided deeper insights into the genetics of plasticity, with potential benefit in genomic selection of crops in heterogeneous environments and predicting changes in species distribution and the evolutionary trajectory of wild populations.

genetics↗

Histone H3 tail modifications regulate structure and dynamics of the H1 C-terminal domain within nucleosomes

Despite their importance, how linker histone H1s interact in chromatin and especially how the highly positively charged and intrinsically disordered H1 C-terminal domain (CTD) binds and stabilizes nucleosomes and higher-order chromatin structures remains unclear. Using single-molecule FRET we found that about half of the H1 CTDs in H1-nucleosome complexes exhibit well-defined FRET values indicative of distinct, static conformations, while the remainder of the population exhibits dynamically changing values, similar to that observed for H1 in the absence of nucleosomes. We also find that the first 30 residues of the CTD participate in relatively localized interactions with the first [~]20 bp of linker DNA, and that two separate regions in the CTD contribute to H1-dependent organization of linker DNA, consistent with some non-random CTD-linker DNA interactions. Finally, our data show that acetylation mimetics within the histone H3 tail induce decondensation and enhanced dynamics of the nucleosome-bound H1 CTD. (148 words)

biophysics↗

Bacterial Peptidoglycan as a Food Digestive Signal in the Nematode that Facilitates Adaptation of Animals in Nature

Food availability and usage is a major adaptive force for the successful survival of animals in nature. However, very little is known about the signal from food to activate the hosts digestive system, which facilitates animals to digest more diverse food in nature. Here, by using a food digestion system in C. elegans, we discover that bacterial peptidoglycan (PGN) is a unique food signal that activates animals to digest inedible food. We find that PGN was sensed by a conserved intestinal glycosylated protein (BCF-1) in nematodes via direct interaction, which promoted food digestion through inhibiting the mitochondrial unfolded protein response (UPRmt). Moreover, constitutive activation of UPRmt is sufficient to inhibit food digestion. Thus, our study reveals how bacterial PGN, as a common digestion cue, activates the food digestive system through interacting with a conserved glycosylated protein, which facilitates adaptation of the host animals by increasing ability to consume a wide range of foods in their natural environment.

physiology↗

Complex chemical signals dictate Ah receptor activation through the gut-lung axis

The aryl hydrocarbon receptor (AHR) mediates intestinal barrier homeostasis. Many AHR ligands are also CYP1A1/1B1 substrates, which can result in the rapid clearance within the intestinal tract, limiting AHR activation. This led us to the hypothesis that there are dietary substrates of CYP1A1/1B1 that increase the half-life of potent AHR ligands. We examined the potential of urolithin A (UroA) as a CYP1A1/1B1 substrate to enhance AHR activity in vivo. UroA is a competitive substrate for CYP1A1/1B1 in an in vitro competition assay. A broccoli-containing diet promotes the gastric formation of the potent hydrophobic AHR ligand and CYP1A1/1B1 substrate, 5,11-dihydroindolo[3,2-b]carbazole (ICZ). Dietary exposure to UroA in a broccoli diet led to a coordinated increase in duodenal, cardiac, and pulmonary AHR activity, but no increase in activity in liver. Thus, CYP1A1 dietary competitive substrates can lead to intestinal "escape", likely through the lymphatic system, increasing AHR activation in key barrier tissues.

biochemistry↗