[1] ZHUKOVSKY M A, FILOGRANA A, LUINI A, et al. Phosphatidic acid in membrane rearrangements [J]. Febs Letters, 2019, 593(17): 2428 − 2451.
[2] CONNERTH M, TATSUTA T, HAAG M, et al. Intramitochondrial transport of phosphatidic acid in yeast by a lipid transfer protein [J]. Science, 2012, 338(6108): 815 − 818.
[3] WANG Ziqing, ZHANG Feng, HE Jingquan, et al. Binding of PLD2-generated phosphatidic acid to KIF5B promotes MT1-MMP surface trafficking and lung metastasis of mouse breast cancer cells [J]. Developmental Cell, 2017, 43(2): 186 − 197.
[4] CRADDOCK C P, ADAMS N, BRYANT F M, et al. PHOSPHATIDIC ACID PHOSPHOHYDROLASE regulates phosphatidylcholine biosynthesis in Arabidopsis by phosphatidic acid-mediated activation of CTP: PHOSPHOCHOLINE CYTIDYLYLTRANSFERASE activity [J]. The Plant Cell, 2015, 27(4): 1251 − 1264.
[5] ATHENSTAEDT K. Phosphatidic acid biosynthesis in the model organism yeast Saccharomyces cerevisiae-a survey [J/OL]. Biochimica et Biophysica Acta-Molecular and Cell Biology of Lipids, 2021, 1866(6): 158907[2023-05-30]. doi:10.1016/j.bbalip.2021.158907.
[6] WANG Xuemin, DEVAIAH S P, ZHANG Wenhua, et al. Signaling functions of phosphatidic acid [J]. Progress in Lipid Research, 2006, 45(3): 250 − 278.
[7] SELVY P E, LAVIERI R R, LINDSLEY C W, et al. Phospholipase D: enzymology, functionality, and chemical modulation [J]. Chemical Reviews, 2011, 111(10): 6064 − 6119.
[8] TAN Weijuan, YANG Yicong, ZHOU Ying, et al. DIACYLGLYCEROL ACYLTRANSFERASE and DIACYLGLYCEROL KINASE modulate triacylglycerol and phosphatidic acid production in the plant response to freezing stress [J]. Plant Physiology, 2018, 177(3): 1303 − 1318.
[9] XING Jingjing, ZHANG Liang, DUAN Zhikun, et al. Coordination of phospholipid-based signaling and membrane trafficking in plant immunity [J]. Trends in Plant Science, 2021, 26(4): 407 − 420.
[10] ARISZ S A, TESTERINK C, MUNNIK T. Plant PA signaling via diacylglycerol kinase [J]. Biochimica et Biophysica Acta-Molecular and Cell Biology of Lipids, 2009, 1791(9): 869 − 875.
[11] de JONG C F, LAXALT A M, BARGMANN B O, et al. Phosphatidic acid accumulation is an early response in the Cf-4/Avr4 interaction [J]. The Plant Journal, 2004, 39(1): 1 − 12.
[12] KOOIJMAN E E, TIELEMAN D P, TESTERINK C, et al. An electrostatic/hydrogen bond switch as the basis for the specific interaction of phosphatidic acid with proteins [J]. Journal of Biological Chemistry, 2007, 282(15): 11356 − 11364.
[13] ZHANG Wenhua, QIN Chunbo, ZHAO Jian, et al. Phospholipase Dα1-derived phosphatidic acid interacts with ABI1 phosphatase 2C and regulates abscisic acid signaling [J]. Proceedings of the National Academy of Sciences, 2004, 101(25): 9508 − 9513.
[14] YAO Hongyan, WANG Geliang, GUO Liang, et al. Phosphatidic acid interacts with a MYB transcription factor and regulates its nuclear localization and function in Arabidopsis [J]. The Plant Cell, 2013, 25(12): 5030 − 5042.
[15] SAGARAM U S, EL-MOUNADI K, BUCHKO G W, et al. Structural and functional studies of a phosphatidic acid-binding antifungal plant defensin MtDef4: identification of an RGFRRR motif governing fungal cell entry [J/OL]. PLoS One, 2013, 8(12): e82485[2023-05-30]. doi:10.1371/journal.pone.0082485.
[16] CAO Chunyan, WANG Peipei, SONG Hongdi, et al. Phosphatidic acid binds to and regulates guanine nucleotide exchange factor 8 (GEF8) activity in Arabidopsis [J]. Functional Plant Biology, 2017, 44(10): 1029 − 1038.
[17] CHOUDHURY S R, PANDEY S. Phosphatidic acid binding inhibits RGS 1 activity to affect specific signaling pathways in Arabidopsis [J]. The Plant Journal, 2017, 90(3): 466 − 477.
[18] KOOIJMAN E E, CHUPIN V, de KRUIJFF B, et al. Modulation of membrane curvature by phosphatidic acid and lysophosphatidic acid [J]. Traffic, 2003, 4(3): 162 − 174.
[19] TESTERINK C, MUNNIK T. Molecular, cellular, and physiological responses to phosphatidic acid formation in plants [J]. Journal of Experimental Botany, 2011, 62(7): 2349 − 2361.
[20] LIN Feng, ZHENG Junming, XIE Yanhua, et al. Emerging roles of phosphoinositide-associated membrane trafficking in plant stress responses [J]. Journal of Genetics and Genomics, 2022, 49(8): 726 − 734.
[21] ZHOU Xueyan, LI Jianfang, WANG Yiqiao, et al. The classical SOS pathway confers natural variation of salt tolerance in maize [J]. New Phytologist, 2022, 236(2): 479 − 494.
[22] LI Wenyu, SONG Tengzhao, WALLRAD L, et al. Tissue-specific accumulation of pH-sensing phosphatidic acid determines plant stress tolerance [J]. Nature Plants, 2019, 5(9): 1012 − 1021.
[23] RUSTEN T E, STENMARK H. Analyzing phosphoinositides and their interacting proteins [J]. Nature Methods, 2006, 3(4): 251 − 258.
[24] IVANOVA P T, MILNE S B, MYERS D S, et al. Lipidomics: a mass spectrometry based systems level analysis of cellular lipids [J]. Current Opinion in Chemical Biology, 2009, 13(5/6): 526 − 531.
[25] OLIVEIRA T G, CHAN R B, TIAN Huasong, et al. Phospholipase D2 ablation ameliorates Alzheimer’s disease-linked synaptic dysfunction and cognitive deficits [J]. Journal of Neuroscience, 2010, 30(49): 16419 − 16428.
[26] CARMAN G M, HAN G S. Regulation of phospholipid synthesis in the yeast Saccharomyces cerevisiae [J]. Annual Review of Biochemistry, 2011, 80: 859 − 883.
[27] ATHENSTAEDT K, DAUM G. Phosphatidic acid, a key intermediate in lipid metabolism [J]. European Journal of Biochemistry, 1999, 266(1): 1 − 16.
[28] BOHDANOWICZ M, SCHLAM D, HERMANSSON M, et al. Phosphatidic acid is required for the constitutive ruffling and macropinocytosis of phagocytes [J]. Molecular Biology of the Cell, 2013, 24(11): 1700 − 1712.
[29] KASSAS N, TRYOEN-TÓTH P, CORROTTE M, et al. Genetically encoded probes for phosphatidic acid [J]. Methods in Cell Biology, 2012, 108: 445 − 459.
[30] JULKOWSKA M M, MCLOUGHLIN F, GALVAN-AMPUDIA C S, et al. Identification and functional characterization of the Arabidopsis Snf 1-related protein kinase SnRK 2.4 phosphatidic acid‐binding domain [J]. Plant,Cell &Environment, 2015, 38(3): 614 − 624.
[31] FERRAZ-NOGUEIRA J P, DÍEZ-GUERRA F J, LLOPIS J. Visualization of phosphatidic acid fluctuations in the plasma membrane of living cells [J/OL]. PLoS One, 2014, 9(7): e102526[2023-05-30]. doi:10.1371/journal.pone.0102526.
[32] KASSAS N, TANGUY E, THAHOULY T, et al. Comparative characterization of phosphatidic acid sensors and their localization during frustrated phagocytosis [J]. The Journal of Biological Chemistry, 2017, 292(10): 4266 − 4279.
[33] NAKANISHI H, de LOS SANTOS P, NEIMAN A M. Positive and negative regulation of a SNARE protein by control of intracellular localization [J]. Molecular Biology of the Cell, 2004, 15(4): 1802 − 1815.
[34] PLATRE M P, NOACK L C, DOUMANE M, et al. A combinatorial lipid code shapes the electrostatic landscape of plant endomembranes [J]. Developmental Cell, 2018, 45(4): 465 − 480.
[35] LI Teng, XIAO Xingkai, LIU Qingyun, et al. Dynamic responses of PA to environmental stimuli imaged by a genetically encoded mobilizable fluorescent sensor [J/OL]. Plant Communications, 2022, 4(3): 100500[2023-05-30]. doi: 10.1016/j.xplc.2022.100500.
[36] MUNNIK T, MEIJER H J G, TER RIET B, et al. Hyperosmotic stress stimulates phospholipase D activity and elevates the levels of phosphatidic acid and diacylglycerol pyrophosphate [J]. The Plant Journal, 2000, 22(2): 147 − 154.