The long term objective of this project is to obtain an understanding of the mechanisms by which the activities of disparate genes are temporally controlled. The system I have chosen as a model of such regulation is the production of the chorion (eggshell) by the monolayer of follicle cells surrounding the maturing oocytes of the commericial silkmoth, Bombyx mori. In these cells the synthesis of well over 100 chorion proteins follows a precise temporal pattern corresponding to a program of specific mRNA production. The majority of these chorion proteins are members of large multigene families. At least 50 percent of these genes have been localized to continuous segments of DNA 370 kb in length. The remaining chorion genes will be cloned and linked to these segments using modified chromosomal walking procedures. The individual genes encountered in the locus will be classified as to their respective gene family and to their precise period of expression in choriogenesis. Remarkable variability of the DNA level has been detected between different inbred strains of B. mori. A detailed description of this variation will be obtained by additional chromosomal walking in these strains. Any conserved features revealed by this analysis will indicate elements critical to the maintenance of coordinate gene expression. The variable features will suggest the processes by which the gene families can change during evolution. Two possible mechanism for the regulation of chorion gene expression will be tested. Chromatin accessibility will be explored by monitoring developmental changes in DNase sensitivity, state of methylation or association with the nuclear matrix. Regulation by means of promoter structure will be explored by comparative DNA sequence determination of the ca. 250 bp 5' regions separating the divergently oriented chorion gene pairs.

Agency
National Institute of Health (NIH)
Institute
National Institute of General Medical Sciences (NIGMS)
Type
Research Project (R01)
Project #
5R01GM031867-03
Application #
3280283
Study Section
Genetics Study Section (GEN)
Project Start
1983-04-01
Project End
1986-03-31
Budget Start
1985-04-01
Budget End
1986-03-31
Support Year
3
Fiscal Year
1985
Total Cost
Indirect Cost
Name
University of Rochester
Department
Type
Schools of Arts and Sciences
DUNS #
208469486
City
Rochester
State
NY
Country
United States
Zip Code
14627
Nimigean, Crina M; Miller, Christopher (2002) Na+ block and permeation in a K+ channel of known structure. J Gen Physiol 120:323-35
Xiong, Y; Burke, W D; Eickbush, T H (1993) Pao, a highly divergent retrotransposable element from Bombyx mori containing long terminal repeats with tandem copies of the putative R region. Nucleic Acids Res 21:2117-23
Burke, W D; Eickbush, D G; Xiong, Y et al. (1993) Sequence relationship of retrotransposable elements R1 and R2 within and between divergent insect species. Mol Biol Evol 10:163-85
Jakubczak, J L; Burke, W D; Eickbush, T H (1991) Retrotransposable elements R1 and R2 interrupt the rRNA genes of most insects. Proc Natl Acad Sci U S A 88:3295-9
Hibner, B L; Burke, W D; Eickbush, T H (1991) Sequence identity in an early chorion multigene family is the result of localized gene conversion. Genetics 128:595-606
Jakubczak, J L; Xiong, Y; Eickbush, T H (1990) Type I (R1) and type II (R2) ribosomal DNA insertions of Drosophila melanogaster are retrotransposable elements closely related to those of Bombyx mori. J Mol Biol 212:37-52
Yue, X N; Sakaguchi, B; Eickbush, T H (1988) Gene conversions can generate sequence variants in the late chorion multigene families of Bombyx mori. Genetics 120:221-31
Xiong, Y; Burke, W D; Jakubczak, J L et al. (1988) Ribosomal DNA insertion elements R1Bm and R2Bm can transpose in a sequence specific manner to locations outside the 28S genes. Nucleic Acids Res 16:10561-73
Nur, U; Werren, J H; Eickbush, D G et al. (1988) A ""selfish"" B chromosome that enhances its transmission by eliminating the paternal genome. Science 240:512-4
Eickbush, T H; Robins, B (1985) Bombyx mori 28S ribosomal genes contain insertion elements similar to the Type I and II elements of Drosophila melanogaster. EMBO J 4:2281-5