[On the plasmatic filaments in assimilate conducting cells, their development and fine structure]

H D Behnke1, I Dörr

  • 1Botanisches Institut der Universität Bonn, Bonn, Deutschland.

Planta
|February 20, 2014
PubMed

Insights

This study introduces the term "plasmatic filament" to describe fine subunits within sieve elements, clarifying their structure and development. These filaments, previously misidentified as "fibrils," are crucial components of plant vascular tissue.

Area of Science:

  • Plant Cell Biology
  • Plant Anatomy
  • Phloem Physiology

Context:

  • Sieve tube slime, also known as mictoplasm or slime strands, is a key component of sieve elements.
  • Previous research has lacked detailed understanding of the fine structure and nomenclature of these slime components.
  • Distinguishing young sieve elements from surrounding parenchyma cells is important for understanding phloem development.

Purpose:

  • To propose and define the term "plasmatic filament" for the fine subunits of sieve tube slime.
  • To describe the development and spreading of plasmatic filaments within sieve elements.
  • To elucidate the substructure of plasmatic filaments and differentiate them from
  • fibrils

Summary:

  • The term "plasmatic filament" is introduced to precisely describe the fine subunits of sieve tube slime, correcting the previous misnomer "fibrils".
  • Investigations in *Dioscorea* reveal that plasmatic filaments originate from the groundplasm, rich in ribosomes, and spread throughout the sieve element lumen.
  • Detailed substructure analysis shows plasmatic filaments possess an osmiophilic outer ring and a light center, with diameters of 120-150 Å.

Impact:

  • Clarifies the nomenclature and fine structure of essential components within plant vascular tissue.
  • Provides a foundation for future research into the function and dynamics of plasmatic filaments in sieve elements.
  • Enhances understanding of phloem transport mechanisms and cell differentiation in plants.

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