C‐Type LECTIN receptor‐like kinase 1 and ACTIN DEPOLYMERIZING FACTOR 3 are key components of plasmodesmata callose modulation

Author:

Kumar Ritesh1ORCID,Iswanto Arya B. B.1,Kumar Dhinesh1ORCID,Shuwei Wu1,Oh Kyujin1,Moon Jiyun1,Son Geon H.1,Oh Eun‐Seok2,Vu Minh H.1,Lee Jinsu1,Lee Keun W.3,Oh Man‐Ho2,Kwon Chian4,Chung Woo S.13ORCID,Kim Jae‐Yean13,Kim Sang H.13ORCID

Affiliation:

1. Division of Applied Life Science (BK21 Four Program), Plant Molecular Biology and Biotechnology Research Center Gyeongsang National University Jinju Republic of Korea

2. Department of Biological Sciences, College of Biological Sciences and Biotechnology Chungnam National University Daejeon Republic of Korea

3. Division of Life Science Gyeongsang National University Jinju Republic of Korea

4. Department of Molecular Biology Dankook University Cheonan Korea

Abstract

AbstractPlasmodesmata (PDs) are intercellular organelles carrying multiple membranous nanochannels that allow the trafficking of cellular signalling molecules. The channel regulation of PDs occurs dynamically and is required in various developmental and physiological processes. It is well known that callose is a critical component in regulating PD permeability or symplasmic connectivity, but the understanding of the signalling pathways and mechanisms of its regulation is limited. Here, we used the reverse genetic approach to investigate the role of C‐type lectin receptor‐like kinase 1 (CLRLK1) in the aspect of PD callose‐modulated symplasmic continuity. Here, we found that loss‐of‐function mutations in CLRLK1 resulted in excessive PD callose deposits and reduced symplasmic continuity, resulting in an accelerated gravitropic response. The protein interactome study also found that CLRLK1 interacted with actin depolymerizing factor 3 (ADF3) in vitro and in plants. Moreover, mutations in ADF3 result in elevated PD callose deposits and faster gravitropic response. Our results indicate that CLRLK1 and ADF3 negatively regulate PD callose accumulation, contributing to fine‐tuning symplasmic opening apertures. Overall, our studies identified two key components involved in the deposits of PD callose and provided new insights into how symplasmic connectivity is maintained by the control of PD callose homoeostasis.

Publisher

Wiley

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