Search PubMed⌕ Search

Biomedical subjects

Susan A Gerbi

Publications and source records attributed to Susan A Gerbi.

13 recordsLinked to original sources

Ecdysone induces transcription and amplification in Sciara coprophila DNA puff II/9A.

DNA replication is normally tightly regulated to ensure the production of only one copy of the genome per cell cycle. However, DNA puffs of the salivary gland giant polytene chromosomes of Sciara coprophila undergo DNA amplification during the normal course of development, overriding this control. This developmental strategy provides more template for the production of large amounts of protein needed for pupation. We have focused on DNA puff II/9A, which amplifies approximately 17-fold over the rest of the genome. Evidence presented here suggests that DNA amplification at this locus is controlled by the steroid hormone ecdysone, the master regulator of insect development. Explanted, pre-amplification stage salivary glands undergo premature amplification when incubated with ecdysone. Injection of ecdysone into pre-amplification stage larvae induces amplification. Ecdysone also induces transcription of the II/9A genes. We report the presence of a putative ecdysone response element directly adjacent to the origin recognition complex (ORC)-binding site in the II/9A origin and demonstrate that it is efficiently bound by the Sciara ecdysone receptor. These results implicate ecdysone in the regulation of DNA amplification in Sciara and suggest the ecdysone receptor may be the elusive amplification factor. This would be a new role for this transcription factor.

Animals↗

An evolutionary intra-molecular shift in the preferred U3 snoRNA binding site on pre-ribosomal RNA.

Correct docking of U3 small nucleolar RNA (snoRNA) on pre-ribosomal RNA (pre-rRNA) is essential for rRNA processing to produce 18S rRNA. In this report, we have used Xenopus oocytes to characterize the structural requirements of the U3 snoRNA 3'-hinge interaction with region E1 of the external transcribed spacer (ETS) of pre-rRNA. This interaction is crucial for docking to initiate rRNA processing. 18S rRNA production was inhibited when fewer than 6 of the 8 bp of the U3 3'-hinge complex with the ETS could form; moreover, base pairing involving the right side of the 3'-hinge was more important than the left. Increasing the length of the U3 hinge-ETS interaction by 9 bp impaired rRNA processing. Formation of 18S rRNA was also inhibited by swapping the U3 5'- and 3'-hinge interactions with the ETS or by shifting the base pairing of the U3 3'-hinge to the sequence directly adjacent to ETS region E1. However, 18S rRNA production was partially restored by a compensatory shift that allowed the sequence adjacent to the U3 3'-hinge to pair with the eight bases directly adjacent to ETS region E1. The results suggest that the geometry of the U3 snoRNA interaction with the ETS is critical for rRNA processing.

Animals↗

Mapping origins of DNA replication in eukaryotes.

Methods are described here to map an origin of replication in eukaryotes. Replicating DNA is enriched by BND cellulose column chromatography and by lambda-exonuclease digestion; this approach has largely superceded enrichment by BrdU incorporation. The general area in which replication begins can be deciphered by neutral/neutral 2D gel electrophoresis: a restriction fragment containing the replication bubble will form a bubble arc on these gels. A more sensitive method employs PCR analysis of nascent strands that are size-fractionated. Once the general area containing the origin of bidirectional replication has been mapped, a finer level of resolution can be obtained by replication initiation point (RIP) mapping, in which start sites of DNA synthesis are identified at the nucleotide level.

Animals↗

Xenopus U3 snoRNA docks on pre-rRNA through a novel base-pairing interaction.

U3 small nucleolar RNA (snoRNA) is essential for rRNA processing to form 18S ribosomal RNA (rRNA). Previously, it has been shown that nucleolin is needed to load U3 snoRNA on pre-rRNA. However, as documented here, this is not sufficient. We present data that base-pairing between the U3 hinges and the external transcribed spacer (ETS) is critical for functional alignment of U3 on its pre-rRNA substrate. Additionally, the interaction between the U3 hinges and the ETS is proposed to serve as an anchor to hold U3 on the pre-rRNA substrate, while box A at the 5' end of U3 snoRNA swivels from ETS contacts to 18S rRNA contacts. Compensatory base changes revealed base-pairing between the 3' hinge of U3 snoRNA and region E1 of the ETS in Xenopus pre-rRNA; this novel interaction is required for 18S rRNA production. In contrast, base-pairing between the 5' hinge of U3 snoRNA and region E2 of the ETS is auxiliary, unlike the case in yeast where it is required. Thus, higher and lower eukaryotes use different interactions for functional association of U3 with pre-rRNA. The U3 hinge sequence varies between species, but covariation in the ETS retains complementarity. This species-specific U3-pre-rRNA interaction offers a potential target for a new class of antibiotics to prevent ribosome biogenesis in eukaryotic pathogens.

Animals↗

In an era of scientific opportunity, are there opportunities for biomedical scientists?

Has the dramatic growth in the NIH budget affected the training and production of biomedical Ph.D.s? Examination of new survey data reveals surprising findings. Despite the need for an increased workforce to carry out the expansion in biomedical research, there has not been an increase in new U.S. doctorates awarded, and time-to-degree in the biomedical sciences is no longer increasing. Furthermore, both the frequency and length of postdoctoral appointments are decreasing for U.S. biomedical science recipients. There has been, however, continued growth in the number of foreign postdoctorals. Industrial employment of biomedical scientists continues to increase, but there has been only modest growth in tenured or tenure-track academic jobs.

Education, Graduate↗

U4 snRNA nucleolar localization requires the NHPX/15.5-kD protein binding site but not Sm protein or U6 snRNA association.

All small nuclear RNAs (snRNAs) of the [U4/U6.U5] tri-snRNP localize transiently to nucleoli, as visualized by microscopy after injection of fluorescein-labeled transcripts into Xenopus laevis oocyte nuclei. Here, we demonstrate that these RNAs traffic to nucleoli independently of one another, because U4 snRNA deleted in the U6 base-pairing region still localizes to nucleoli. Furthermore, depletion of endogenous U6 snRNA does not affect nucleolar localization of injected U4 or U5. The wild-type U4 transcripts used here are functional: they exhibit normal nucleocytoplasmic traffic, associate with Sm proteins, form the [U4/U6] di-snRNP, and localize to nucleoli and Cajal bodies. The nucleolar localization element (NoLE) of U4 snRNA was mapped by mutagenesis. Neither the 5'-cap nor the 3'-region of U4, which includes the Sm protein binding site, are essential for nucleolar localization. The only region in U4 snRNA required for nucleolar localization is the 5'-proximal stem loop, which contains the binding site for the NHPX/15.5-kD protein. Even mutation of just five nucleotides, essential for binding this protein, impaired U4 nucleolar localization. Intriguingly, the NHPX/15.5-kD protein also binds the nucleolar localization element of box C/D small nucleolar RNAs, suggesting that this protein might mediate nucleolar localization of several small RNAs.

Animals↗

The nucleolus: a site of ribonucleoprotein maturation.

The nucleolus is the site of ribosomal RNA synthesis, processing and ribosome maturation. Various small ribonucleoproteins also undergo maturation in the nucleolus, involving RNA modification and RNA-protein assembly. Such steps and other activities of small ribonucleoproteins also take place in Cajal (coiled) bodies. Events of ribosome biogenesis are found solely in the nucleolus, which is the final destination of small nucleolar RNAs after their traffic through Cajal bodies. However, nucleoli are just a stopping point in the intricate cellular traffic for small nuclear RNAs and other ribonucleoproteins.

Animals↗

A DNase I hypersensitive site flanks an origin of DNA replication and amplification in Sciara.

In chromosomes of metazoa, the assembly of the genome into chromatin makes an important but poorly understood contribution to determining where DNA replication will initiate. We addressed this issue by studying the developmental progression of the location of the DNA replication origin (ORI) and alterations in chromatin structure in one of the best-mapped ORIs in metazoa, that found in DNA puff II/9A of the fly Sciara coprophila. We found that DNA synthesis for both normal chromosomal endoduplication and DNA amplification initiates within the same 5.5 kb EcoRI fragment. We showed that irrespective of the mode of ORI function--replication or amplification--chromatin over the 1 kb major ORI is never remodeled into a conventional DNase I hypersensitive site (DH site). Instead, we found that the major site of alterations to chromatin structure at this locus is a large (approximately 400 bp) DH site located 600 bp away from the major ORI, at a position where the frequency of replication initiation events falls dramatically. We describe a tight positive correlation between ORI activity, strength of this DH site, and the intranuclear titer of protein factor(s) that bind the DH site in a sequence-specific manner. We propose that the Sciara replicator in locus II/9A is composed of sequences that reside within the ORI per se as well as sequences encompassed by the DH site.

Animals↗

DNA replication and chromatin.

The study of DNA replication in eukaryotic chromosomes has revealed a multitude of different regulatory levels. Nuclear and chromosomal location as well as chromatin structure may affect the activity of replication origins and their modulation during development.

Animals↗

All small nuclear RNAs (snRNAs) of the [U4/U6.U5] Tri-snRNP localize to nucleoli; Identification of the nucleolar localization element of U6 snRNA.

Previously, we showed that spliceosomal U6 small nuclear RNA (snRNA) transiently passes through the nucleolus. Herein, we report that all individual snRNAs of the [U4/U6.U5] tri-snRNP localize to nucleoli, demonstrated by fluorescence microscopy of nucleolar preparations after injection of fluorescein-labeled snRNA into Xenopus oocyte nuclei. Nucleolar localization of U6 is independent from [U4/U6] snRNP formation since sites of direct interaction of U6 snRNA with U4 snRNA are not nucleolar localization elements. Among all regions in U6, the only one required for nucleolar localization is its 3' end, which associates with the La protein and subsequently during maturation of U6 is bound by Lsm proteins. This 3'-nucleolar localization element of U6 is both essential and sufficient for nucleolar localization and also required for localization to Cajal bodies. Conversion of the 3' hydroxyl of U6 snRNA to a 3' phosphate prevents association with the La protein but does not affect U6 localization to nucleoli or Cajal bodies.

Animals↗

Developmental changes in the Sciara II/9A initiation zone for DNA replication.

Developmentally regulated initiation of DNA synthesis was studied in the fly Sciara at locus II/9A. PCR analysis of nascent strands revealed an initiation zone that spans approximately 8 kb in mitotic embryonic cells and endoreplicating salivary glands but contracts to 1.2 to 2.0 kb during DNA amplification of DNA puff II/9A. Thus, the amplification origin occurs within the initiation zone used for normal replication. The initiation zone left-hand border is constant, but the right-hand border changes during development. Also, there is a shift in the preferred site for initiation of DNA synthesis during DNA amplification compared to that in preamplification stages. This is the first demonstration that once an initiation zone is defined in embryos, its borders and preferred replication start sites can change during development. Chromatin immunoprecipitation showed that the RNA polymerase II 140-kDa subunit occupies the promoter of gene II/9-1 during DNA amplification, even though intense transcription will not start until the next developmental stage. RNA polymerase II is adjacent to the right-hand border of the initiation zone at DNA amplification but not at preamplification, suggesting that it may influence the position of this border. These findings support a relationship between the transcriptional machinery and establishment of the replication initiation zone.

Animals↗

Initiation of DNA replication in multicellular eukaryotes.

Three questions central to understanding the initiation of DNA replication in eukaryotes are: (1) Does DNA synthesis begin at a defined place? (2) What determines replication initiation sites? (3) What regulates an origin to fire only once per cell cycle? A key player in this is the origin recognition complex (ORC), required for assembly of the pre-replication complex (pre-RC), that is converted later to the initiation complex (IC). In both yeast ARS1 and DNA puff II/9A of the metazoan fly Sciara, there is a defined start site of replication adjacent to an ORC-binding site. Although ORC has some inherent preference for certain DNA sequences, other factors may also modulate its binding to DNA. The preferred site where DNA synthesis starts at Sciara II/9A and the boundaries of the initiation zone change during development, when DNA puff amplification occurs. The position of the initiation zone may be influenced by the transcriptional machinery and/or chromatin structure. With regard to the third question, rereplication of the whole genome in yeast occurs when components of the pre-RC are stabilized by mutation. In contrast, a locus-specific amplification factor probably exists to account for site-specific DNA amplification in flies.

Animals↗