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Life behind cell walls: paradigm lost, paradigm regained.

D T Lamport1

  • 1MSU-DOE Plant Research Laboratory, Michigan State University, East Lansing 48823-1312, USA. D.T.A.Lamport@sussex.ac.uk

Cellular and Molecular Life Sciences : CMLS
|November 6, 2001
PubMed
Summary

This review explores the role of proteins in plant cell walls, challenging traditional views that focus mostly on carbohydrates. It suggests that hydroxyproline-rich glycoproteins, like extensins, may regulate cell expansion and elongation. Recent findings indicate that proteins like expansins may act as proteases, not just as hydrogen bond disruptors. This implies that the extensin network is not a rigid scaffold but a dynamic substrate for enzymatic activity. The authors propose a new framework for understanding cell wall function, emphasizing the interplay between proteins and carbohydrates. They argue that this perspective could lead to a better understanding of plant growth and development.

Keywords:
cell wall proteinsextensin functionexpansin activityplant cell biologyprotein-carbohydrate interactions

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Area of Science:

  • Plant cell biology
  • Cell wall structure and function
  • Protein-carbohydrate interactions in plant biology

Background:

For decades, plant cell wall research has focused heavily on carbohydrates as the primary structural component. While proteins are known to be present, their functional roles have often been overlooked or undervalued. Hydroxyproline-rich glycoproteins (HRGPs) have been proposed to influence wall mechanics, but the carbohydrate-centric view has limited the recognition of their full potential. Recent findings challenge this paradigm by suggesting that proteins like expansins may act in ways not previously understood. This has created a gap in understanding how proteins and carbohydrates interact dynamically to regulate cell wall behavior. A shift in perspective is needed to incorporate protein roles in wall function and regulation. This review explores historical and current views of cell wall proteins and their functional implications. It also considers how evolving definitions of 'function' can help clarify the roles of these complex molecules.

Purpose Of The Study:

The study aims to reevaluate the role of hydroxyproline-rich glycoproteins in plant cell wall function. It challenges the traditional carbohydrate-focused paradigm by highlighting protein contributions. The authors seek to reconcile older hypotheses with recent discoveries about expansins. This includes examining how proteins like extensins may regulate cell expansion and elongation. The review also addresses the resistance to paradigm change in plant cell wall research. It uses historical insights and recent data to propose a more integrated view of wall function. The goal is to present a framework that accommodates both structural and regulatory roles of proteins. Ultimately, the study aims to stimulate renewed interest in protein-carbohydrate interactions.

Main Methods:

The authors conduct a literature review spanning over four decades of research on cell wall proteins. They use anecdotal accounts to illustrate the evolution of scientific understanding and perspectives. The review incorporates philosophical and linguistic frameworks to define the concept of 'function'. Examples from Humpty Dumby and Wittgenstein are used to frame functional definitions. The authors analyze recent findings, such as the protease activity of beta-expansins. They compare traditional views of expansins with new data on their enzymatic roles. The study synthesizes historical and contemporary evidence to propose a new functional model. It builds a conceptual ziggurat to represent increasing levels of organization from molecular to ecological.

Main Results:

The review highlights the role of hydroxyproline-rich glycoproteins in cell wall function. It presents evidence that extensins may act as substrates for expansins in vivo. This suggests that extensins are not static structures but dynamic regulators of cell expansion. The study identifies a potential morphogenetic mechanism involving both positive and negative regulation. It notes that beta-expansins may have protease activity, contradicting earlier hydrogen bond disruption models. The findings imply that the extensin network is a substrate for expansins rather than a rigid scaffold. The review proposes that this interaction could be a major mechanism in plant growth and development. The authors suggest that this perspective could lead to a broader understanding of cell wall dynamics.

Conclusions:

The authors suggest that hydroxyproline-rich glycoproteins may be central to cell wall regulation. They propose that extensins are not merely structural but also functional in cell expansion. The review indicates that proteins like expansins may act as proteases in vivo. This challenges the traditional view of expansins as hydrogen bond disruptors. The study emphasizes the need for a paradigm shift in understanding cell wall function. It suggests that the extensin network is a dynamic substrate for enzymatic activity. The authors argue that this interaction could be a major morphogenetic mechanism in plants. They conclude that integrating protein and carbohydrate roles is essential for a complete model of cell wall function.

The authors suggest these proteins may regulate cell expansion and elongation through interactions with expansins.

Recent data suggest beta-expansins may act as proteases, not just hydrogen bond disruptors.

Because it is not a rigid scaffold but a target for enzymatic activity by expansins.

It represents increasing levels of organization from molecular to ecological, helping define function.

Extensins regulate both positive and negative aspects of cell expansion and elongation.

It proposes that proteins like extensins are dynamic substrates, not static structures.