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Conserved autophagy and diverse cell wall composition: unifying features of vascular tissues in evolutionarily distinct plants.
Michalak, Kornel M; Wojciechowska, Natalia; Marzec-Schmidt, Katarzyna; Bagniewska-Zadworna, Agnieszka.
Affiliation
  • Michalak KM; Department of General Botany, Institute of Experimental Biology, Faculty of Biology, Adam Mickiewicz University in Poznan, Uniwersytetu Poznanskiego 6, 61-614 Poznan, Poland.
  • Wojciechowska N; Department of General Botany, Institute of Experimental Biology, Faculty of Biology, Adam Mickiewicz University in Poznan, Uniwersytetu Poznanskiego 6, 61-614 Poznan, Poland.
  • Marzec-Schmidt K; Nomad Foods Ltd, Findus Sverige AB, Bjuv, Sweden.
  • Bagniewska-Zadworna A; Department of General Botany, Institute of Experimental Biology, Faculty of Biology, Adam Mickiewicz University in Poznan, Uniwersytetu Poznanskiego 6, 61-614 Poznan, Poland.
Ann Bot ; 133(4): 559-572, 2024 Apr 23.
Article in En | MEDLINE | ID: mdl-38324309
ABSTRACT
BACKGROUND AND

AIMS:

The formation of multifunctional vascular tissues represents a significant advancement in plant evolution. Differentiation of conductive cells is specific, involving two main pathways, namely protoplast clearance and cell wall modification. In xylogenesis, autophagy is a crucial process for complete protoplast elimination in tracheary elements, whose cell wall also undergoes strong changes. Knowledge pertaining to living sieve elements, which lose most of their protoplast during phloemogenesis, remains limited. We hypothesized that autophagy plays a crucial role, not only in complete cytoplasmic clearance in xylem but also in partial degradation in phloem. Cell wall elaborations of mature sieve elements are not so extensive. These analyses performed on evolutionarily diverse model species potentially make it possible to understand phloemogenesis to an equal extent to xylogenesis.

METHODS:

We investigated the distribution of ATG8 protein, which is an autophagy marker, and cell wall components in the roots of ferns, gymnosperms and angiosperms (monocots, dicot herbaceous plants and trees). Furthermore, we conducted a bioinformatic analysis of complete data on ATG8 isoforms for Ceratopteris richardii. KEY

RESULTS:

The presence of ATG8 protein was confirmed in both tracheary elements and sieve elements; however, the composition of cell wall components varied considerably among vascular tissues in the selected plants. Arabinogalactan proteins and ß-1,4-galactan were detected in the roots of all studied species, suggesting their potential importance in phloem formation or function. In contrast, no evolutionary pattern was observed for xyloglucan, arabinan or homogalacturonan.

CONCLUSIONS:

Our findings indicate that the involvement of autophagy in plants is universal during the development of tracheary elements that are dead at maturity and sieve elements that remain alive. Given the conserved nature of autophagy and its function in protoplast degradation for uninterrupted flow, autophagy might have played a vital role in the development of increasingly complex biological organizations, including the formation of vascular tissues. However, different cell wall compositions of xylem and phloem in different species might indicate diverse functionality and potential for substance transport, which is crucial in plant evolution.
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Full text: 1 Collection: 01-internacional Database: MEDLINE Main subject: Autophagy / Cell Wall / Biological Evolution / Xylem Type of study: Prognostic_studies Language: En Journal: Ann Bot Year: 2024 Type: Article Affiliation country: Poland

Full text: 1 Collection: 01-internacional Database: MEDLINE Main subject: Autophagy / Cell Wall / Biological Evolution / Xylem Type of study: Prognostic_studies Language: En Journal: Ann Bot Year: 2024 Type: Article Affiliation country: Poland