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Luo, Y.-b.

Publications and source records attributed to Luo, Y.-b..

2 recordsLinked to original sources

Ovipositor morphology and mechanosensory divergence drive niche breadth expansion in Drosophila

Ecological niche breadth is key factor associated with adaptive radiation and speciation. For most Drosophila species, the firm surface of intact ripe fruit acts as a physical barrier to oviposition, effectively restricting them to the saprophagous resources. How species overcome such mechanical constraints at the behavioral and sensory levels, and whether doing so leads to niche breadth expansion or niche specialization, remain poorly understood. Here, using comparative behavioral assays across ten Drosophila species, we show that substrate physical hardness is a critical barrier preventing most species from exploiting ripe fruit. Among species capable of puncture oviposition, there are two distinct evolutionary strategies among Drosophila species. With its serrated ovipositor and strong preference for fresh fruit, D. suzukii represents a case of ripe-fruit specialization. In contrast, D. immigrans with the needle-like ovipositor, gains access to fresh fruit while retaining the ability to exploit decaying substrates, thereby expanding its resource niche. Thus, D. suzukii considered as the typical evolutionary niche specialization, while D. immigrans represents niche expansion. Furthermore, using the genetic toolkit of D. melanogaster, we further identify the Inactive (IAV) mechanosensory channel as important regulator of stiffness-dependent oviposition inhibition. Loss of iav reduced inhibition on firm substrates, while cross-species rescue experiments showed that IAV orthologs differed in their ability to restore this response in a common genetic background. Puncture oviposition was also associated with successful offspring development on firm fruit and with the use of firm-surfaced hosts under natural conditions. Together, these findings identified a novel niche expansion of D. immigrans among the saprophagous Drosophila.

evolutionary biology↗

Metabolite Profiling of Epimedium sagittatum Bee Pollen: Identified Bioactive Flavonoids with Multi-Disease Functional Food Potential

Epimedium sagittatum bee pollen (EBP) is a bee pollen product of a medicinal plant, but its chemical characteristics remain unclear. In this study, EBP was systematically characterized by biochemical analysis and UPLC-MS/MS, using Brassica rapa bee pollen (BBP), Camellia sinensis bee pollen (CBP), and Epimedium leaves for compari-son. A total of 1,073 secondary metabolites were identified in EBP, mainly flavonoids (330, 30.8%) and phenolic acids (165, 15.3%). EBP showed the highest total flavonoid content among the three bee pollen types (4.75 mg/g) and was clearly separated from BBP and CBP in multivariate analysis. EBP contained 19 unique metabolites, fewer than CBP (271), but these included several high-content flavonoid compounds, such as cacticin, brassicin, and tricetin-4'-methyl ether-3'-{beta}-D-glucoside. Differential metabolite analysis identified 449 and 1,085 metabolites that differed between EBP and BBP, re-spectively, with flavonoid compounds forming the main differential class. Among the shared differential metabolites, 45 flavonoids were consistently higher in EBP, in-cluding kaempferol, tamarixetin, and sinensetin. Network pharmacology screening further suggested that flavonoid metabolites, especially kaempferol, tamarixetin, and sinensetin, deserve particular attention in future studies of EBP. Compared with Epimedium leaves, characteristic leaf flavonoids such as icariin and epimedins A-C were present at very low levels or were not detected in EBP. Overall, EBP is charac-terized by a distinct, relatively concentrated flavonoid chemical profile, distinct from both common commercial bee pollens and Epimedium medicinal tissues. O_FIG O_LINKSMALLFIG WIDTH=200 HEIGHT=160 SRC="FIGDIR/small/679240v2_ufig1.gif" ALT="Figure 1"> View larger version (56K): org.highwire.dtl.DTLVardef@1587d35org.highwire.dtl.DTLVardef@8461d6org.highwire.dtl.DTLVardef@1336149org.highwire.dtl.DTLVardef@381ae8_HPS_FORMAT_FIGEXP M_FIG C_FIG

plant biology↗