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通过愈伤组织基因编辑鉴定出假定的鼠李半乳糖醛酸聚糖 II 糖基转移酶,该基因编辑绕过了胚胎致死性。

Putative rhamnogalacturonan-II glycosyltransferase identified through callus gene editing which bypasses embryo lethality.

机构信息

Joint BioEnergy Institute, Emeryville, CA 94608, USA.

Environmental Genomics and Systems Biology Division, Lawrence Berkeley National Laboratory, Berkeley, CA 94720, USA.

出版信息

Plant Physiol. 2024 Jul 31;195(4):2551-2565. doi: 10.1093/plphys/kiae259.

Abstract

Rhamnogalacturonan II (RG-II) is a structurally complex and conserved domain of the pectin present in the primary cell walls of vascular plants. Borate cross-linking of RG-II is required for plants to grow and develop normally. Mutations that alter RG-II structure also affect cross-linking and are lethal or severely impair growth. Thus, few genes involved in RG-II synthesis have been identified. Here, we developed a method to generate viable loss-of-function Arabidopsis (Arabidopsis thaliana) mutants in callus tissue via CRISPR/Cas9-mediated gene editing. We combined this with a candidate gene approach to characterize the male gametophyte defective 2 (MGP2) gene that encodes a putative family GT29 glycosyltransferase. Plants homozygous for this mutation do not survive. We showed that in the callus mutant cell walls, RG-II does not cross-link normally because it lacks 3-deoxy-D-manno-octulosonic acid (Kdo) and thus cannot form the α-L-Rhap-(1→5)-α-D-kdop-(1→sidechain). We suggest that MGP2 encodes an inverting RG-II CMP-β-Kdo transferase (RCKT1). Our discovery provides further insight into the role of sidechains in RG-II dimerization. Our method also provides a viable strategy for further identifying proteins involved in the biosynthesis of RG-II.

摘要

鼠李半乳糖醛酸聚糖 II(RG-II)是植物初生细胞壁中果胶的一种结构复杂且保守的结构域。硼酸盐交联 RG-II 是植物正常生长和发育所必需的。改变 RG-II 结构的突变也会影响交联,从而导致植物致死或严重生长受损。因此,很少有参与 RG-II 合成的基因被鉴定出来。在这里,我们开发了一种通过 CRISPR/Cas9 介导的基因编辑在愈伤组织中产生拟南芥(Arabidopsis thaliana)功能丧失型活突变体的方法。我们将其与候选基因方法相结合,鉴定出编码假定 GT29 糖基转移酶的雄性配子体缺陷 2(MGP2)基因。该突变体的纯合植株不能存活。我们表明,在愈伤组织突变体细胞壁中,RG-II 不能正常交联,因为它缺乏 3-脱氧-D-甘露糖辛酮酸(Kdo),因此不能形成α-L-鼠李糖-(1→5)-α-D-凯杜糖-(1→侧链)。我们认为 MGP2 编码一种反转 RG-II CMP-β-Kdo 转移酶(RCKT1)。我们的发现进一步揭示了侧链在 RG-II 二聚化中的作用。我们的方法还为进一步鉴定参与 RG-II 生物合成的蛋白质提供了可行的策略。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/88e7/11288761/b7d4e8d6e95f/kiae259f1.jpg

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