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M Burri

Publications and source records attributed to M Burri.

28 records · Page 2Linked to original sources

Molecular characterization of spalt, a homeotic gene required for head and tail development in the Drosophila embryo.

The isolation, identification and structure of the spalt gene is described. This novel homeotic gene of Drosophila is required for the establishment of the posterior-most head and the anterior-most tail segments of the embryo. It encodes a small mRNA of 0.8 kb which is under the control of over 15 kb of upstream sequences as indicated by the phenotype of transformed embryos. The putative spalt protein contains internal repeats and other interesting structural motifs but no homeo box. The spalt transcript accumulates motifs but no homeo box. The spalt transcript accumulates to high levels in the segmental anlagen affected in mutant embryos but is also found in regions of the embryo where no functional requirement has been demonstrated.

Journal Article↗

The role of localization of bicoid RNA in organizing the anterior pattern of the Drosophila embryo.

The organization of the anterior pattern in the Drosophila embryo is mediated by the maternal effect gene bicoid. bcd has been identified in an 8.7-kb genomic fragment by germ line transformants that completely rescue the mutant phenotype. The major transcript of 2.6 kb includes a homeobox with low homology to previously known homeoboxes, a PRD-repeat and a M-repeat. In situ hybridizations reveal that bcd is transcribed in the nurse cells. The mRNA is localized at the anterior tip of oocyte and early embryo until the cellular blastoderm stage. The localization of the transcript requires the function of the maternal effect genes exuperantia and swallow while transcript stability is reduced by functions depending on posterior group genes.

Alleles↗

Structure of two genes at the gooseberry locus related to the paired gene and their spatial expression during Drosophila embryogenesis.

The gooseberry (gsb) locus contains two closely linked genes, BSH9 and BSH4, which are structurally related to each other and to the paired (prd) gene. Sequence analysis of genomic DNA and cDNA shows that BSH9 and BSH4 can encode proteins of 427 and 452 amino acids, respectively. The structural homology between these two putative proteins and the prd protein consists essentially of two domains forming most of the amino-terminal halves of the proteins: the prd domain of 128 amino acids and a prd-type homeo domain of 60 amino acids, which is extended by 18 amino acids at its amino-terminal end. The temporal profiles of BSH9 and BSH4 transcripts, as characterized by Northern analysis, show a peak shortly after the peak of prd transcripts. The spatial distributions of BSH9 and BSH4 transcripts have been analyzed by in situ hybridization to whole-mount and sectioned embryos. BSH9 transcripts appear in the posterior ventrolateral part of each primordial segment throughout the embryo, including head and tail segments. Transcripts are initially restricted to the ectoderm, in which they arise as two spatially shifted and temporally delayed waves exhibiting double-segment periodicity and anteroposterior polarity. During germ-band extension, BSH9 is induced in the mesoderm in register with the ectoderm and neurectoderm and in the tail segments A9-A11. In contrast, BSH4 transcripts appear with a single-segment repeat, first, in the neurectoderm during germ-band extension and, later, in single neurons during neuronal differentiation. BSH9, BSH4, and prd are activated in cells that are in register along the anteroposterior axis of the embryo in the posterior parts of primordial segments comprising the posterior compartments of engrailed expression.

Age Factors↗

Conservation of a large protein domain in the segmentation gene paired and in functionally related genes of Drosophila.

Extending our search for homologous domains of the Drosophila paired gene, two closely linked genes at the gooseberry locus have been isolated. Both genes are expressed with a single segment periodicity but with different spatial and temporal expression patterns. While the transcripts of one gene appear earlier and are equally distributed between ectoderm and mesoderm, those of the second gene accumulate preferentially in neuroblasts. The similarity of these expression patterns to the 14-band pattern of the paired gene suggests a functional relationship. Such a functional link may be reflected in the two structurally homologous domains shared with the paired gene: a new type of homeo box extended by 18 amino acids at the 5' end, and a new domain, the paired box, consisting of a sequence of 128-135 amino acids. Thus, together with the PRD repeat, the paired gene contains at least three different domains, each defining a gene set thought to be important for development.

Animals↗

Structure of the segmentation gene paired and the Drosophila PRD gene set as part of a gene network.

The sequence of paired, a pair-rule gene required for segmentation in Drosophila, is presented. A search for genes with domains homologous to the paired gene was initiated and three homologues from a set of 12 were characterized with respect to temporal or spatial expression and sequence homologies. All four are transcribed in early development, one in the oocyte and during cleavage stages in the form of a gradient. In addition to the prd-specific his-pro repeat, some of the 12 genes contain M-repeats and two new types of homeo boxes not detectable by hybridization with the two known classes of homeo boxes. The observed linking of gene sets through combinations of homologies coding for protein domains is consistent with a general network concept of gene action.

Amino Acid Sequence↗

[Congenital intercoronary arterial anastomosis. Apropos of a case and review of the literature].

The authors report a case of coronary arterial anastomosis between the right coronary and left circumflex arteries in the absence of other coronary pathology. This is an exceptionally rare congenital malformation which is situated either in the atrioventricular groove or at the apex in the interventricular groove. It constitutes a diagnostic pitfall because, in contrast to a collateral circulation, it is not an indirect sign of occlusive coronary artery.

Arteries↗

[Vitelline components in teratomas and serum alpha-1 fetoprotein].

Serum alpha1-fetoprotein (AFP) had been determined in 31 patient with (mostly malignant) teratomas before or immediately after operation, and later in the evolution of 3 other cases with clinical evidence of recurrence or metastases. Without knowledge of these serum AFP levels, histological slides of the same 34 teratomas were reexamined, especially for the presence of yolk sac components. Two pure yolk sac tumors and 6 teratomas containing yolk sac structures were associated with serum AFP levels above 500 ng/ml. Teratomas without yolk sac structures were associated with normal serum AFP levels (i.e. 10-500 ng/ml) in 14 cases, and high serum levels (i.e. above 500 ng/ml) in one case. Histologic analysis of the 14 cases with slightly elevated AFP levels did not reveal tissue possibly responsible for the low but nevertheless abnormal AFP synthesis. High AFP levels, which are easily detectable by counter-current immunoelectrophoresis, are, however, highly specific for the yolk sac tumor or the yolk sac component of teratomas, and hence suggest that this extra-embryonic structure should be distinguished from other teratoma components.

Adolescent↗

Comparative chromatin analysis of Trypanosoma congolense.

The chromatin of Trypanosoma congolense was analyzed by electron microscopy. The chromatin is organized as nucleosome filaments but does not form a 30 nm fiber. There are five groups of histones, including a histone H1-like protein, which as a molecular weight within the range of the core histones, and is extremely hydrophilic. Weak histone-histone interaction, a typical feature of trypanosome chromatin, was found. These results are similar to those for T. cruzi and T. b. brucei, but differ significantly from those for higher eukaryotes. The results confirm the model of trypanosome chromatin, and support the theory of their early separation from the other eukaryotes during the evolution. T. congolensis is an excellent model for chromatin research on trypanosomes, because it is easy to cultivate and its chromatin has, a relatively high stability, compared to that of other trypanosomes.

Animals↗