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Chromosome-level genome assembly of Cylas formicarius provides insights into its adaptation and invasion mechanisms
HUA Jin-feng, ZHANG Lei, HAN Yong-hua, GOU Xiao-wan, CHEN Tian-yuan, HUANG Yong-mei, LI Yan-qing, MA Dai-fu, LI Zong-yun
2023, 22 (3): 825-843.   DOI: 10.1016/j.jia.2022.08.027
Abstract265)      PDF in ScienceDirect      

Cylas formicarius is one of the most important pests of sweet potato worldwide, causing considerable ecological and economic damage.  This study improved the effect of comprehensive management and understanding of genetic mechanisms by examining the functional genomics of Cformicarius.  Using Illumina and PacBio sequencing, this study obtained a chromosome-level genome assembly of adult weevils from lines inbred for 15 generations.  The high-quality assembly obtained was 338.84 Mb, with contig and scaffold N50 values of 14.97 and 34.23 Mb, respectively.  In total, 157.51 Mb of repeat sequences and 11 907 protein-coding genes were predicted.  A total of 337.06 Mb of genomic sequences was located on the 11 chromosomes, accounting for 99.03% of the total length of the associated chromosome.  Comparative genomic analysis showed that Cformicarius was sister to Dendroctonus ponderosae, and Cformicarius diverged from Dponderosae approximately 138.89 million years ago (Mya).  Many important gene families expanded in the Cformicarius genome were involved in the detoxification of pesticides, tolerance to cold stress and chemosensory system.  To further study the role of odorant-binding proteins (OBPs) in olfactory recognition of Cformicarius, the binding assay results indicated that CforOBP4–6 had strong binding affinities for sex pheromones and other ligands.  The high-quality Cformicarius genome provides a valuable resource to reveal the molecular ecological basis, genetic mechanism, and evolutionary process of major agricultural pests; it also offers new ideas and new technologies for ecologically sustainable pest control.

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Efficiency of potassium-solubilizing Paenibacillus mucilaginosus for the growth of apple seedling
CHEN Yan-hui, YANG Xiao-zhu, LI Zhuang, AN Xiu-hong, MA Ren-peng, LI Yan-qing, CHENG Cun-gang
2020, 19 (10): 2458-2469.   DOI: 10.1016/S2095-3119(20)63303-2
Abstract139)      PDF in ScienceDirect      
Chemical potassium (K) fertilizer is commonly used in apple (Malus domestica L. Borkh) production but K is easily fixed by soil, resulting in reduced K fertilizer utilization and wasted resources.  K-solubilizing bacteria (KSB) can cost-effectively increase the soluble K content in rhizosphere soil.  Therefore, the objectives were to select high-efficiency KSB from apple orchards under various soil management models and evaluate their effects on apple seedling growth.  Maize (Zea mays L.) straw mulching (MSM) increased the total carbon (TC), total nitrogen (TN) and available potassium (AK) in the rhizosphere and improved fruit quality.  The number of KSB in the rhizosphere soil of MSM was 9.5×104 CFU g–1 soil, which was considerably higher than that in the other mulching models.  Fourteen KSB strains were isolated with relative K solubilizing ability ranging from 17 to 30%, and five strains increased the dry weight per apple seedling.  The most efficient strain was identified as Paenibacillus mucilaginosus through morphological observation and sequence analysis of 16S rDNA, named JGK.  After inoculation, the colonization of JGK in soil decreased from 4.0 to 1.5×109 CFU g–1 soil within 28 d.  The growth of the apple seedlings and the K accumulation in apple plants were promoted by irrigation with 50 mL JGK bacterial solution (1×109 CFU mL–1), but there was no significant increase in the AK content of rhizosphere soil.  High-performance liquid phase analysis (HPLC) data showed that the JGK metabolites contained phytohormones and organic acids.  Hence, the JGK strain promoted the growth of two-month-old apple seedlings by stimulating function of the produced phytohormones and enhanced K solubility by acidification for apple seedling uptake.  This study enriches the understanding of KSB and provides an effective means to increase the K utilization efficiency of apple production.
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