bioRxiv ScienceSearch

Biology subjects

Titus, T.

Publications and source records attributed to Titus, T..

2 recordsLinked to original sources

Transgene-mediated skeletal phenotypic variation in zebrafish

When considering relationships between genotype and phenotype we frequently ignore the fact that the genome of a typical animal, notably including that of a fish and a human, harbors a huge amount of foreign DNA. Some of it, including the DNA of \"autonomous\" transposable elements, can spontaneously mobilize to occupy new chromosomal sites and take on new functions, presenting a challenge to the host organism and also possibly introducing new fuel for evolutionary change. Transposable elements are useful for introducing transgenes, integrating them into host genomes with high efficiency. Transgenesis has become very widespread in biological research, and in our society at large. This year the governments of both Canada and the United States have approved the first use of genetically engineered animals in food production, Atlantic salmon, Salmo salar. With the recent advent of amazing gene-editing technology, there is no doubt that the transgene industry will grow explosively in the coming years. The biology of transgenes needs to be included in our understanding of the genome. It is in this spirit that we have investigated an unexpected and novel phenotypic effect of the chromosomally integrated transgene fli1a-F-hsp70l:Gal4VP16. We examine larval fras1 mutant zebrafish (Danio rerio). Gal4VP16 is a potent transcriptional activator, and already well known for toxicity and mediating unusual transcriptional effects. In the presence of the transgene, phenotypes in the neural crest-derived craniofacial skeleton, notably fusions and shape changes associated with loss of function fras1 mutations, are made more severe, as we quantify by scoring phenotypic penetrance, the fraction of mutants expressing the trait. A very interesting feature is that the enhancements are highly specific for fras1 mutant phenotypes - occurring in the apparent absence of more wide-spread changes. Except for the features due to the fras1 mutation, the transgene-bearing larvae appear generally healthy and to be developing normally. The transgene behaves as a genetic partial dominant: A single copy is sufficient for the enhancements, yet, for some traits, two copies may exert a stronger effect. We made new strains bearing independent insertions of the fli1a-F-hsp70l:Gal4VP16 transgene in new locations in the genome, and observed increased severities of the same phenotypes as observed for the original insertion. This finding suggests that sequences within the transgene, e.g. Gal4VP16, are responsible for the enhancements, rather than effect on neighboring host sequences (such as an insertional mutation). The specificity, and biological action underlying the traits, are subjects of considerable interest for further investigation, as we discuss. Our findings show that work with transgenes needs to be undertaken with caution and attention to detail.

developmental biology

The roles of Amh in zebrafish gonad development and sex determination

Fetal mammalian testes secrete Amh (Anti-Mullerian hormone), which inhibits female reproductive tract (Mullerian duct) development. Amh also derives from mature mammalian ovarian follicles, which marks oocyte reserve and characterizes PCOS (polycystic ovarian syndrome). Zebrafish (Danio rerio) lacks Mullerian ducts and the Amh receptor gene amhr2 but, curiously, retains amh. To discover the roles of Amh in the absence of Mullerian ducts and the ancestral receptor gene, we made amh null alleles in zebrafish. Results showed that normal amh prevents female-biased sex ratios. Adult male amh mutants had enormous testes, half of which contained immature oocytes, demonstrating that Amh regulates male germ cell accumulation and inhibits oocyte development or survival. Mutant males formed sperm ducts and some produced a few offspring. Young female mutants laid a few fertile eggs, so they also had functional sex ducts. Older amh mutants accumulated non-vitellogenic follicles in exceedingly large but sterile ovaries, showing that Amh helps control ovarian follicle maturation and proliferation. RNA-seq data partitioned 21-day post-fertilization (dpf) juveniles into two groups that each contained mutant and wild type fish. Group21-1 up-regulated ovary genes compared to Group21-2, which were likely developing as males. By 35dpf, transcriptomes distinguished males from females and, within each sex, mutants from wild types. In adult mutants, ovaries greatly under-expressed granulosa and theca genes and testes under-expressed Leydig cell genes. These results show that ancestral Amh functions included development of the gonadal soma in ovaries and testes and regulation of gamete proliferation and maturation. A major gap in our understanding is the identity of the gene encoding a zebrafish Amh receptor; we show here that the loss of amhr2 is associated with the breakpoint of a chromosome rearrangement shared among cyprinid fishes.\n\nArticle SummaryAnti-Mullerian hormone (Amh) inhibits female reproductive duct development, signals oocyte reserve, and marks polycystic ovarian syndrome. Zebrafish lacks Mullerian ducts and the typical Amh receptor, questioning evolving roles of Amh. We made knockout mutations in zebrafish amh. Most mutants were female and the few males often had oocytes in their testes, showing that Amh promotes male development. Mutant reproductive ducts functioned, but testes were enormous and ovaries accumulated immature oocytes, showing that Amh regulates germ cell proliferation and maturation. Transcriptomics revealed that Amh controls development of steroid-producing gonad cells. Amh in zebrafish preserved ancestral roles despite losing Mullerian ducts and the Amh receptor.

genetics