Phloem Ultrastructure and Pressure Flow: Sieve-Element-Occlusion-Related Agglomerations Do Not Affect Translocation

Author:

Froelich Daniel R.1,Mullendore Daniel L.1,Jensen Kåre H.2,Ross-Elliott Tim J.1,Anstead James A.3,Thompson Gary A.3,Pélissier Hélène C.14,Knoblauch Michael1

Affiliation:

1. School of Biological Sciences, Washington State University, Pullman Washington 99164-4236

2. Department of Physics, Technical University of Denmark, 2800 Kongens Lyngby, Denmark

3. College of Agricultural Sciences, Pennsylvania State University, Pennsylvania 16802

4. Department of Plant Biology and Biotechnology, University of Copenhagen, 1871 Frederiksberg, Denmark

Abstract

Abstract Since the first ultrastructural investigations of sieve tubes in the early 1960s, their structure has been a matter of debate. Because sieve tube structure defines frictional interactions in the tube system, the presence of P protein obstructions shown in many transmission electron micrographs led to a discussion about the mode of phloem transport. At present, it is generally agreed that P protein agglomerations are preparation artifacts due to injury, the lumen of sieve tubes is free of obstructions, and phloem flow is driven by an osmotically generated pressure differential according to Münch's classical hypothesis. Here, we show that the phloem contains a distinctive network of protein filaments. Stable transgenic lines expressing Arabidopsis thaliana Sieve-Element-Occlusion-Related1 (SEOR1)–yellow fluorescent protein fusions show that At SEOR1 meshworks at the margins and clots in the lumen are a general feature of living sieve tubes. Live imaging of phloem flow and flow velocity measurements in individual tubes indicate that At SEOR1 agglomerations do not markedly affect or alter flow. A transmission electron microscopy preparation protocol has been generated showing sieve tube ultrastructure of unprecedented quality. A reconstruction of sieve tube ultrastructure served as basis for tube resistance calculations. The impact of agglomerations on phloem flow is discussed.

Publisher

Oxford University Press (OUP)

Subject

Cell Biology,Plant Science

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