Commercial Bacillus-based probiotics are widely used in poultry production, but their biological mechanisms of action in broiler chickens are still not fully understood. This study evaluated the effects of dietary supplementation with Bacillus-based commercial probiotics on the performance, meat and tibia traits, gut health (ileal morphology and cecal volatile fatty acids), antioxidant status, nutrient digestibility, and intestinal gene expression in broiler chickens. Day-old Ross 308 broiler chicks (288 in total) were randomly assigned to one of four dietary treatments, with six replicate pens of 12 birds each in an environmentally controlled facility. The treatments included a control group fed a basal diet and three probiotic-supplemented diets: Bacillus subtilis KCCM13366P at 5.0 × 107 cfu/kg (BS), Bacillus licheniformis KCCM11751P at 1.0 × 108 cfu/kg (BL), or an equal blend at 2.0 × 108 cfu/kg (BSL). On days 21 and 35, one or three birds per pen were sampled for feathers, blood, small intestine, and cecal digesta to determine the indicators of gut health (i.e., secrtory immunoglobulin A, gut morphology, cecal volatile fatty acids, and intestinal gene expression) and physiology (i.e., serum parameters, corticosterone, and antioxidants parameters). In addition, meat quality and ileal nutrient digestibility were assayed on day 35. Data were analyzed using the general linear model procedure in SAS followed by pairwise differences using Tukey's post-hoc test. Statistical significance was preset at P < 0.05. The trial lasted for 35 days. Dietary BSL tended to increase feed intake during the grower phase by 6.33% (P = 0.087). Dietary BS and BSL improved the feed conversion ratio by 7.83% and 5.22%, respectively, during the starter phase (P < 0.05) and BSL reduced overall feed conversion ratio by 1.99% compared to the control group (P < 0.05). At 21 days, dietary BSL increased the ileal villus height:crypt depth ratio by 40.66% (P < 0.05). The activity of glutathione peroxidase in the ileal mucosa, but not in the serum samples, was decreased by 36.34% in the BS group and 38.06% in the BSL group at 21 days (P < 0.05). Serum glutamic oxaloacetic transaminase concentrations were lower by 22.3% on day 21, and ileal digestibility of crude protein and crude ash were lower by 6.6% and 21.9% on day 35, respectively, in birds fed the BSL diet than in the control group (P < 0.05). The interleukin-8 and interferon-alpha expression levels in the ileum were increased by 2.0-fold in BL-fed broilers compared to the control group (P < 0.05). The expression of genes encoding antioxidant-related parameters, tight junction proteins, mucin, and glucose transporters was upregulated by 2.0- to 4.0-fold in dietary BL and BSL groups on days 21 and 35 (P < 0.05). We concluded that dietary BS improved growth performance, whereas dietary BL enhanced cytokine, gut barrier, mucin, antioxidant, and nutrient transporter mRNA levels, resulting in additive effects of BSL on chickens. Based on the enhanced intestinal gene expression induced by dietary BS or BSL, further studies are needed to determine protective immunity against enteric pathogens in broiler chickens.
This study constructed a pH-responsive P-TN/SF@Fe-Cur composite coating that demonstrated significant anti-infective, anti-inflammatory, antioxidant, pro-angiogenic, and pro-osteogenic effects in rat subcutaneous infection and femoral defect models.
ProteinReasoner is developed, a multimodal generative protein foundation model that sequentially connects amino acid sequence, evolutionary constraints and three-dimensional structure within a shared autoregressive architecture and suggests a general route towards reasoning across interdependent representations in other scientific domains.
Chaozhong Liu, Linlin Chao, Shaomin Ji et al.· bioRxiv· 1 citation
Due to its importance and wide adoption, wheat cultivation is promptly required to shift towards sustainable practices, reducing the dependency on chemical components. Among bio-based solutions aimed at securing the sustainability of wheat cultivation, biostimulants offer a versatile platform of eco-friendly tools assuring sustainability and profitability. Microalgae present a concrete example of a biostimulant source due to their richness in metabolites and high value products. Therefore, this study evaluated the biostimulant potential of eleven eco-extracts prepared from soil-isolated microalgae strains. Eco-extracts applied via soil drench at low dose (0.1 g/L) were investigated for their biostimulant effects on wheat growth, physiology, yield, and quality under controlled conditions. Results demonstrated significant ameliorations in treated plants as compared to the control, with no phytoinhibitory effects. Remarkable enhancements were notable in growth parameters such as shoot and root lengths (+40-70%), physiological traits such as total chlorophyll and stomatal conductance (+7-52%), yield components in the example of grain number per spike and thousand grain weight (+17-103%), and grain quality namely protein and polyphenol content (+2-fold to 4-fold). Similarly, phosphorus accumulation and uptake were significantly improved, while soil physicochemical status was ameliorated, indicating enhanced fertility. Multivariate analysis and composite index ranking marked Chlorella sp. GA18, Chlorella sp. GA65, Scenedesmus sp. GA69, and Chlorococcum sp. GA63 as eco-extracts with consistent performances across all plant traits. These findings highlighted the promising potential of integrating microalgae-based eco-friendly extracts in sustainable wheat cultivation.
Amer Chabili, Z. Hakkoum, F. Minaoui et al.· Plant Science· 1 citation
HydroGym is introduced, a solver-independent reinforcement learning platform providing more than 60 validated, openly available flow control environments spanning from canonical laminar flows to complex turbulent flows, with systematic progression in the Reynolds number up to Re = 4 × 105, and Mach number variations in two and three dimensions.
Christian Lagemann, Sajeda Mokbel, Miro Gondrum et al.· Nature· 1 citation
ABSTRACT Microplastics (MPs) accumulation in ecosystem and human organs poses urgent environmental and health risks, yet few enzymes efficiently degrade polyethylene terephthalate (PET) under physiological conditions. We leveraged deep learning to mine unexplored sequence space across 246 million proteins, discovering AhPETase, an evolutionarily distinct hydrolase with low homology (<50% sequence identity) to known PET‐degrading enzymes. This noncanonical biocatalyst efficiently depolymerizes PET at 37°C, outperforming all typical PETases and achieving a 7.76‐fold enhancement over IsPETase, one of the most representative mesophilic PETases. Additionally, engineered variant AhPETaseM1 retains functional activity for over 20 days under physiological conditions and can degrade post‐consumer PET MPs 34‐fold faster than recombinant human‐derived enzyme MG8 (rMG8) under equal enzyme loading. Critically, it reversed PET‐induced toxicity in human lung and colon cells, establishing the first proof‐of‐concept for enzymatic MPs detoxification.
Yuxuan Wang, Shijie He, Yuheng Chang et al.· Advancement of science· 0 citations
The application of quercetin in functional foods is severely limited by its poor aqueous solubility, chemical instability, and low oral bioaccessibility. This study investigated the synergistic effects of ultrasound pretreatment and λ-carrageenan (λ-CA) complexation on the stability and quercetin delivery efficiency of tilapia protein (TP)-based emulsion gels. The results showed that ultrasonication induced partial unfolding of the TP secondary structure and tertiary conformation, thereby exposing more hydrophobic groups and free sulfhydryl groups, which promoted the formation of UTP-λ-CA complexes with enhanced solubility. More importantly, this synergistic strategy constructed a denser, more ordered gel network, providing effective steric hindrance against droplet aggregation and significantly enhancing the viscoelasticity, environmental stability, and digestive resistance of the system. Compared with UTP-0.1%λ-CA and UTP-0.2%λ-CA complex-stabilized emulsion gels, the UTP-0.3%λ-CA emulsion gel exhibited the smallest droplet size (D4,3 = 14.95 μm, D3,2 = 2.80 μm), the highest storage modulus (G'), and superior viscoelasticity. It also demonstrated the highest quercetin retention rates after UV irradiation (77.07%) and thermal treatment (74.93%). Furthermore, this system achieved the greatest quercetin bioaccessibility (31.19%), a 2.09-fold increase compared to the TP emulsion gel (14.92%). These findings provide theoretical support for the development of high-performance aquatic protein-based delivery systems for hydrophobic bioactive compounds.