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L E Roth

Publications and source records attributed to L E Roth.

5 recordsLinked to original sources

Immunogold localization of the NodC and NodA proteins of Rhizobium meliloti.

Monospecific, polyclonal antibodies to the nodC and nodA gene products of Rhizobium meliloti were used in combination with immunogold labeling and transmission electron microscopy to localize the NodC and NodA proteins in cultures of R. meliloti. Both NodC and NodA were detected in the cytoplasm and cell envelope in thin sections of free-living rhizobia treated with luteolin, a known inducer of nod gene expression; however, only NodC was detected on cell surfaces when immunolabeling was performed with intact induced cells. In view of biochemical data characterizing NodC as an outer membrane protein with a large extracellular domain, the pattern of immunolabeling on thin sections suggests that NodC is produced on free cytoplasmic ribosomes prior to assembly in the membrane. The pattern of NodA labeling on thin sections is consistent with biochemical data detecting NodA in both soluble and membrane fractions of NodA-overexpressing strains of R. meliloti.

Acyltransferases

Bacterium release into host cells of nitrogen-fixing soybean nodules: the symbiosome membrane comes from three sources.

The release process of bacteria into the cytoplasm of soybean nodule cells has been studied, and three functional zones of the infection thread are delineated. Zone 1 is found over the greatest length of very long infection threads. Zone 2 is a short region where membrane mobilization by exocytosis of endoplasmic reticulum (ER) into the infection-thread membrane takes place; the result is that much new membrane and wall degradation enzymes can be provided. In addition, de novo membrane formation takes place inside the infection thread in apposition to the bacterial outer membrane. Zone 3 is the endocytic region where both bacteria and infection-thread wall degradation vesicles are released into the host cytoplasm and constitute a second product of endocytosis at the infection thread tip. Evidence is presented indicating that the symbiosome membrane, even at its time of origin, is composed of membrane from three sources: the host infection-thread membrane, ER, and de novo synthesis; the membrane formation that is so large for these purposes is probably carried out both from the ER directly and also through the Golgi-apparatus synthesis. Evidence is also given that the bacteria have lost their exopolysaccharide coatings before release into symbiosomes.

Bacteria

Cytoplasmic membrane systems involved in bacterium release into soybean nodule cells as studied with two Bradyrhizobium japonicum mutant strains.

Two Bradyrhizobium japonicum, Tn5-induced, mutant strains, ML126 and ML150, were studied. Both induce host cell division to form normal-sized nodules that do not fix nitrogen and whose cells have very few bacteroids (Bar-). Early-infection (15 days post infection) cells have much endoplasmic reticulum (ER), numerous Golgi bodies, and large vacuoles that are probably secondary lysosomes. Later the cytoplasm of the host cells of both are dominated by hundreds of vesicles containing only finely fibrous material and that appear to originate by the degradation of the cell walls of the infection threads; they have been named "infection-thread wall degradation vesicles" (IWDV). Phosphotungstic acid-chromic acid (PACA) staining of thin sections shows that IWDV membranes and the plasma membranes of both the cells and infection threads usually stain quite intensely, while the membranes of other cell organelles do not. The membranes of the few symbiosomes present in the mutants also stain with PACA. This evidence suggests that largely the host-cell plasma membrane gives rise to both the vesicle and symbiosome membranes in these mutants. In cells induced by both mutants, ER appears to be deficient, a finding suggesting that an ER-synthesis signal is involved in the normal release process, that ER synthesis is prerequisite to a normal volume of release, and that insufficient ER can impair symbiosome formation. In the mutant-induced infections, normal lysosomes develop and engulf both symbiosomes and cytoplasmic vesicles, but the retardation of this activity is the probable cause of the cytoplasm becoming overloaded with vesicles.

Bacteria

Gradionation: hypothesis for positioning and patterning.

The interaction of contiguous proteins is explored in microtubules, rosettes, and membranes based on the well established molecular phenomena of cooperativity and allosterism. It is proposed that conformational gradients in protein arrays cause the formation of gradions by nearest-neighbor interactions. Gradions are repeating functional molecular sequences that contain several conformational forms of one or more proteins, with the result that different reactive sites can exist in the same molecular architecture at any one time. Gradionators are small controlling molecules that may be microscopically visible as layers of linkages, but could alse be smaller. Some of the presently available supporting evidence and its functional implications are discussed, including the possibility that the raison d'etre for membrane-particle arrays is to enhance the regulation and amplification capabilities of cell systems.

Allosteric Regulation

A lipopolysaccharide mutant of Bradyrhizobium japonicum that uncouples plant from bacterial differentiation.

The Tn5-containing fragment from a non-nodulating mutant of Bradyrhizobium japonicum, strain ML142, was introduced into B. japonicum strain 61A101c by marker exchange to construct strain JS314. Strain JS314 failed to nodulate several soybean varieties tested. However, on a few varieties nodulelike structures were induced to a frequency of 54% of the plants inoculated. The ultrastructure of these nodules was studied in detail by light and electron microscopy. The nodules were devoid of internal bacteria, possessed central vascular tissue (unlike the lateral vascular tissue of a normal nodule), and exhibited localized cell death of epidermal cells. Study of the cell surface polysaccharides of strain JS314 revealed that the exopolysaccharide of this strain was identical to that of the wild type. However, the lipopolysaccharide (LPS) of strain JS314 showed gross differences from that isolated from the wild-type strain. Specifically, the LPS of strain JS314 appeared to lack the high molecular weight LPS I form, strongly suggesting that the LPS lacks the O-chain. Glycosyl-composition analysis showed that the LPS of mutant JS314 lacked 2,3-di-O-methylrhamnose, 3-O-methylrhamnose, fucose, and quinovosamine. These results indicate that LPS I in B. japonicum is essential for bacterial infection of soybean, but is not required to initiate plant cortical cell division, an early plant response to infection.

Cell Differentiation