Department of Biology, Washington University in St. Louis, St. Louis, Missouri 63130.
Department of Genetics, University of Wisconsin, Madison, Wisconsin 53706.
Plant Cell. 2020 Dec;32(12):3939-3960. doi: 10.1105/tpc.20.00285. Epub 2020 Sep 30.
Phosphatidylinositol 3-phosphate (PI3P) is an essential membrane signature for both autophagy and endosomal sorting that is synthesized in plants by the class III phosphatidylinositol 3-kinase (PI3K) complex, consisting of the VPS34 kinase, together with ATG6, VPS15, and either VPS38 or ATG14 as the fourth subunit. Although Arabidopsis () plants missing the three core subunits are infertile, mutants are viable but have aberrant leaf, root, and seed development, Suc sensing, and endosomal trafficking, suggesting that VPS38 and ATG14 are nonredundant. Here, we evaluated the role of ATG14 through a collection of clustered regularly interspaced short palindromic repeats (CRISPR)/Cas9 and T-DNA insertion mutants disrupting the two Arabidopsis paralogs. double mutants were relatively normal phenotypically but displayed pronounced autophagy defects, including reduced accumulation of autophagic bodies and cargo delivery during nutrient stress. Unexpectedly, homozygous triple mutants were viable but showed severely compromised rosette development and reduced fecundity, pollen germination, and autophagy, consistent with a need for both ATG14 and VPS38 to fully actuate PI3P biology. However, the triple mutants still accumulated PI3P, but they were hypersensitive to the PI3K inhibitor wortmannin, indicating that the ATG14/VPS38 component is not essential for PI3P synthesis. Collectively, the ATG14/VPS38 mutant collection now permits the study of plants altered in specific aspects of PI3P biology.
磷脂酰肌醇 3-磷酸(PI3P)是自噬和内体分选的必需膜标记物,在植物中由 III 类磷脂酰肌醇 3-激酶(PI3K)复合物合成,该复合物由 VPS34 激酶、ATG6、VPS15 和 VPS38 或 ATG14 组成作为第四亚基。虽然缺少三个核心亚基的拟南芥()植物不育,但 突变体是可行的,但具有异常的叶、根和种子发育、蔗糖感应和内体运输,表明 VPS38 和 ATG14 是非冗余的。在这里,我们通过一系列聚集的规则间隔短回文重复序列(CRISPR)/Cas9 和 T-DNA 插入突变体来评估 ATG14 的作用,这些突变体破坏了两个拟南芥的同源物。 双突变体在表型上相对正常,但显示出明显的自噬缺陷,包括在营养胁迫期间自噬体和货物传递的积累减少。出乎意料的是,纯合 三突变体是可行的,但表现出严重的莲座丛发育受损和繁殖力降低、花粉萌发和自噬受损,这与 ATG14 和 VPS38 都需要充分发挥 PI3P 生物学功能一致。然而,三突变体仍然积累了 PI3P,但它们对 PI3K 抑制剂渥曼青霉素敏感,表明 ATG14/VPS38 组分不是 PI3P 合成所必需的。总的来说,ATG14/VPS38 突变体集合现在允许研究在 PI3P 生物学的特定方面发生改变的植物。