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J H Caulton

Publications and source records attributed to J H Caulton.

11 recordsLinked to original sources

Mutations that encode partially functional beta 2 tubulin subunits have different effects on structurally different microtubule arrays.

The testis-specific beta 2 tubulin of Drosophila is required for assembly and function of at least three architecturally different microtubule arrays (Kemphues et al., 1982). Two recessive male-sterile mutations in the B2t locus that encode partially functional, stable, variant forms of beta 2 tubulin cause defects in only certain microtubule-based processes during spermatogenesis. These mutations could thus identify aspects of beta tubulin primary structure critical for function only in specific microtubule arrays. In males carrying the B2t6 mutation, meiotic chromosome segregation and nuclear shaping are normal and flagellar axonemes are formed, but there is a subtle defect in axoneme structure; the outer doublet microtubules fill in with a central core normally seen only in the central pair and accessory microtubules. In homozygous B2t7 males, chromosome movement is usually normal during meiosis but cytokinesis often fails, cytoplasmic microtubules are assembled and nuclear shaping appears to be normal, but the flagellar axoneme lacks structural integrity. In contrast, the B2t8 allele affects a general property of tubulin, the ability to form normal side-to-side association of protofilaments (Fuller et al., 1987), and causes defects in meiosis, axoneme assembly and nuclear shaping. Certain combinations of these beta 2 tubulin mutations show interallelic complementation; in B2t6/B2t8 males functional sperm are produced and both variant subunits are incorporated into mature sperm, in the absence of wild-type beta 2 tubulin. Comparison of the phenotypes of the three partially functional beta 2 tubulin alleles reveals some aspects of tubulin primary structure more important for function in specific subsets of microtubule arrays, and other aspects required for the construction of microtubules in general.

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Genetic analysis of microtubule structure: a beta-tubulin mutation causes the formation of aberrant microtubules in vivo and in vitro.

A recessive male sterile mutation (B2t8) that encodes a stable variant of the testis-specific beta 2-tubulin of Drosophila causes the assembly of aberrant microtubules both in vivo and in vitro. The B2t8 mutation appears to cause defects in the formation of interprotofilament bonds. In testes from homozygous mutant males, the most commonly observed aberrant structures were sheets of protofilaments curved to form an S in cross section rather than a normal, closed microtubule. These characteristic S-shaped structures appear in the meiotic spindle, in place of axonemes in differentiating spermatids, and in cytoplasmic microtubules, including those that lie next to the nucleus during nuclear elongation. Homozygous mutant males exhibit defects in chromosome movement and cytokinesis during meiosis, flagellar elongation, and nuclear shaping, indicating that the ability to form normal closed microtubules is required for each of these events. The presence of the aberrant microtubules in three architecturally different microtubule arrays demonstrates conclusively the multifunctional nature of the beta 2-tubulin gene product. Although the mutant beta 2-tubulin subunit causes assembly of aberrant microtubules in vitro and in homozygous males, in the presence of wild-type beta 2-tubulin in heterozygous males, the variant subunit coassembles with the wild-type subunit into functional sperm.

Alleles↗

In vitro activation of Drosophila eggs.

Mature ovarian eggs of Drosophila can be activated by treatment with hypotonic buffers. Well-fed, 4-day-old virgin flies contain large numbers of partially dehydrated mature eggs. When these eggs are transferred to a hypotonic culture medium, the ovarian eggs swell immediately and within minutes up to 70% become impermeable. The following cellular events ensue: meiosis, which had been arrested at metaphase I, is completed and the "polar body" nuclei fuse; cortical multivesicular bodies with acid phosphatase activity appear within minutes; polar granules fragment, dissociate from mitochondria, and become associated with polysomes; finally, monosomal ribosomes move to the polysomal region of a sucrose gradient. Each of these events corresponds to the normal in vivo effects of ovulation of oocytes, whether or not they are fertilized. When ovarian eggs of a parthenogenetic strain of D. mercatorum were activated by hypotonic treatment, some eggs developed into normal embryos. The presence of high potassium, low pH, and polyethylene glycol enhanced the frequency of normal development. Thus, we suggest that the rehydration of mature oocytes, as they move from the ovary to the uterus, activates the maternal program of the oocyte.

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