Biallelic null variants inPNPLA8cause microcephaly through the reduced abundance of basal radial glia

Author:

Nakamura YujiORCID,Shimada Issei S.,Maroofian RezaORCID,Houlden HenryORCID,Falabella Micol,Fujimoto Masanori,Sato Emi,Takase Hiroshi,Aoki Shiho,Miyauchi Akihiko,Koshimizu Eriko,Miyatake Satoko,Arioka Yuko,Honda Mizuki,Higashi Takayoshi,Miya Fuyuki,Okubo Yukimune,Ogawa Isamu,Scardamaglia Annarita,Miryounesi Mohammad,Alijanpour Sahar,Ahmadabadi Farzad,Herkenrath Peter,Dafsari Hormos Salimi,Velmans Clara,Balwi Mohammed,Vitobello AntonioORCID,Denommé-Pichon Anne-SophieORCID,Jeanne Médéric,Civit Antoine,Zaki Maha S.,Darvish Hossein,Bakhtiari Somayeh,Kruer Michael,Carroll Christopher J,Karimiani Ehsan Ghayoor,Khailany Rozhgar A,Abdulqadir Talib Adil,Ozaslan Mehmet,Bauer Peter,Zifarelli Giovanni,Seifi Tahere,Zamani Mina,Alam Chadi Al,Pitceathly Robert D SORCID,Haginoya Kazuhiro,Matsunaga Tamihide,Osaka Hitoshi,Matsumoto NaomichiORCID,Ozaki Norio,Ohkawa YasuyukiORCID,Oki Shinya,Tsunoda Tatsuhiko,Taketomi Yoshitaka,Murakami Makoto,Kato Yoichi,Saitoh Shinji

Abstract

AbstractPNPLA8, one of the calcium-independent phospholipase A2 enzymes, is involved in various physiological processes through the maintenance of membrane phospholipids. However, little is known about its role in brain development. Here, we report 12 individuals from 10 unrelated families with biallelic ultra-rare variants inPNPLA8presenting with a wide spectrum of clinical features ranging from developmental and epileptic-dyskinetic encephalopathy (DEDE) to progressive movement disorders. Complete loss of PNPLA8 was associated with the severe end of the spectrum, showing DEDE manifestations and congenital or progressive microcephaly. Using cerebral organoids generated from human induced pluripotent stem cells, we found that loss of PNPLA8 reduced the number of basal radial glial cells (bRGCs) and upper-layer neurons. By spatial transcriptomic analysis targeting apical radial glial cells (aRGCs), we found the downregulation of bRGC-related gene sets in patient-derived cerebral organoids. Lipidomic analysis revealed a decrease in the amount of lysophosphatidic acid, lysophosphatidylethanolamine, and phosphatidic acid, indicative of the disturbed phospholipid metabolism inPNPLA8knockout neural progenitor cells. Our data suggest that PNPLA8 has a critical role in the bRGC-mediated expansion of the developing human cortex by regulating the fate commitment of aRGCs.

Publisher

Cold Spring Harbor Laboratory

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