Studies on the motility of the foraminifera. I. Ultrastructure of the reticulopodial network of Allogromia laticollaris (Arnold).
Open Access
- 1 July 1981
- journal article
- research article
- Published by Rockefeller University Press in The Journal of cell biology
- Vol. 90 (1), 211-221
- https://doi.org/10.1083/jcb.90.1.211
Abstract
A. laticollaris, a benthic marine foraminifer, extends numerous trunk filopodia that repeatedly branch, anastomose and fuse again to form the reticulopodial network (RPN), within which an incessant streaming of cytoplasmic particles occurs. The motion of the particles is saltatory and bidirectional, even in the thinnest filopodia detected by optical microscopy. Fibrils are visible by differential interference microscopy, and the RPN displays positive birefringence in polarized light. These fibrils remain intact after lysis and extraction of the RPN in solutions that stabilize microtubules (MTs). Electron micrographs of thin sections through these lysed and stabilized cytoskeletal models revealed bundles of MTs. The RPNs of living Allogromia may be preserved by standard EM fixatives only after acclimatization to calcium-free seawater, in which the streaming is normal. The MTs in the RPN are typically arranged in bundles that generally lie parallel to the long axis of the trunk and branch filopodia. Stereo electron micrographs of whole-mount, fixed and critical-point-dried organisms show that the complex pattern of MT deployment reflects the pattern of particle motion in flattened and highly branched portions of the RPN. Cytoplasmic particles, some of which have a fuzzy coat, are closely associated with, and preferentially oriented along, either single MTs or MT bundles. Thin filaments (.apprx. 5 nm) are also observed within the network, lying parallel to and interdigitating with the MTs, and in flattened terminal areas of the filopodia. These filaments do not bind skeletal muscle myosin S1 under conditions that heavily decorate actin filaments in controls (human blood platelets), and are .apprx. 20% too thin to be identified ultrastructurally as F-actin.This publication has 34 references indexed in Scilit:
- Actin filament destruction by osmium tetroxideThe Journal of cell biology, 1978
- Microtubules: structure, chemistry, and functionPhysiological Reviews, 1976
- The role of divalent cations in the regulation of microtubule assembly. In vivo studies on microtubules of the heliozoan axopodium using the ionophore A23187.The Journal of cell biology, 1976
- The slow component of axonal transport. Identification of major structural polypeptides of the axon and their generality among mammalian neurons.The Journal of cell biology, 1975
- Motility in Echinosphaerium nucleofilum. I. An analysis of particle motions in the axopodia and a direct test of the involvement of the axoneme.The Journal of cell biology, 1975
- MORPHOLOGICAL EVIDENCE FOR THE PARTICIPATION OF MICROTUBULES IN AXONAL TRANSPORT*Annals of the New York Academy of Sciences, 1975
- Computer analysis of organelle translocation in primary neuronal cultures and continuous cell lines.The Journal of cell biology, 1975
- Polarized Intracellular Particle Transport: Saltatory Movements and Cytoplasmic StreamingInternational Review of Cytology, 1972
- AXON GROWTH: ROLES OF MICROFILAMENTS AND MICROTUBULESProceedings of the National Academy of Sciences, 1970
- IMPROVEMENTS IN EPOXY RESIN EMBEDDING METHODSThe Journal of cell biology, 1961