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961.
Increasing evidence implies altered signaling through the neurotrophic receptor tyrosine kinase TrkB in promoting tumor formation
and metastasis. TrkB, sometimes in conjunction with its primary ligand BDNF, is often overexpressed in a variety of human
cancers, ranging from neuroblastomas to pancreatic ductal adenocarcinomas, in which it may allow tumor expansion and contribute
to resistance to anti-tumor agents. In vitro, TrkB acts as a potent suppressor of anoikis (detachment-induced apoptosis), which is associated with the acquisition of
an aggressive tumorigenic and metastatic phenotype in vivo. In view of its predicted contribution to tumorigenicity and metastasis in humans, TrkB corresponds to a potential drug target,
and preclinical models have already been established. The encouraging results of pharmacological Trk inhibitors in tumor xenograft
models suggest that TrkB inhibition may represent a promising novel anti-tumor therapeutic strategy. This hypothesis is currently
being evaluated in clinical trials. Here, we will discuss the latest developments on TrkB in these contexts as well as highlight
some critical questions that remain to be addressed for evaluating TrkB as a therapeutic target in cancer.
Received 12 October 2005; received after revision 19 December 2005; accepted 11 January 2006 相似文献
962.
Nodal signals pattern vertebrate embryos 总被引:4,自引:0,他引:4
Vertebrate embryonic patterning requires several conserved inductive signals–including Nodal, Bmp, Wnt and Fgf signals. Nodal,
which is a member of the transforming growth factor β (TGFβ) superfamily, activates a signal transduction pathway that is
similar to that of other TGFβ members. Nodal genes, which have been identified in numerous vertebrate species, are expressed
in specific cell types and tissues during embryonic development. Nodal signal transduction has been shown to play a pivotal
role in inducing and patterning mesoderm and endoderm, and in regulating neurogenesis and left-right axis asymmetry. Antagonists,
which act at different steps in the Nodal signal transduction pathway, have been shown to tightly modulate the inductive activity
of Nodal.
Received 20 October 2005; received after revision 15 November 2005; accepted 25 November 2005 相似文献
963.
Expansion of amino acid homo-sequences, such as polyglutamines or polyalanines, in proteins has been directly implicated in
various degenerative diseases through a mechanism of protein misfolding and aggregation. However, it is still unclear how
the nature of the expansion and the protein context influence the tendency of a protein to aggregate. Here, we have addressed
these questions using spinocerebellar ataxia type-3 (ATX3) protein, the best characterised of the polyglutamine proteins,
chosen as a model system. Using a transfected mammalian cell line, we demonstrate that ATX3 aggregation is noticeably reduced
by deletion or replacement of regions other than the polyglutamine tract. The nature of the amino acid homo-sequences also
has a strong influence on aggregation. From our studies, we draw general conclusions on the effect of the protein architecture
and of the amino acid homo-sequence on pathology.
Received 3 March 2006; received after revision 19 April 2006; accepted 22 May 2006 相似文献
964.
Betaine homocysteine S-methyltransferase: just a regulator of homocysteine metabolism? 总被引:1,自引:0,他引:1
Betaine homocysteine methyltransferase (BHMT), a Zn2+-dependent thiolmethyltransferase, contributes to the regulation of homocysteine levels, increases in which are considered
a risk factor for cardiovascular diseases. Most plasma homocysteine is generated through the liver methionine cycle, in which
BHMT metabolizes approximately 25% of this non-protein amino acid. This process allows recovery of one of the three methylation
equivalents used in phosphatidylcholine synthesis through transmethylation, a major homocysteine-producing pathway. Although
BHMT has been known for over 40 years, the difficulties encountered in its isolation precluded detailed studies until very
recently. Thus, the last 10 years, since the sequence became available, have yielded extensive structural and functional data.
Moreover, recent findings offer clues for potential new functions for BHMT. The purpose of this review is to provide an integrated
view of the knowledge available on BHMT, and to analyze its putative roles in other processes through interactions uncover
to date.
Received 26 May 2006; received after revision 3 July 2006; accepted 24 August 2006 相似文献
965.
Bosch-Comas A Lindsten K Gonzàlez-Duarte R Masucci MG Marfany G 《Cellular and molecular life sciences : CMLS》2006,63(6):723-734
The biological functions of the more than one hundred genes coding for deubiquitinating enzymes in the human genome remain
mostly unknown. The USP25 gene, located at 21q11.2, encodes three protein isoforms produced by alternative splicing. While
two of the isoforms are expressed nearly ubiquituously, the expression of the longer USP25 isoform (USP25m) is restricted
to muscular tissues and is upregulated during myogenesis. USP25m interacts with three sarcomeric proteins: actin alpha-1 (ACTA1),
filamin C (FLNC), and myosin binding protein C1 (MyBPC1), which are critically involved in muscle differentiation and maintenance,
and have been implicated in the pathogenesis of severe myopathies. Biochemical analyses demonstrated that MyBPC1 is a short-lived
proteasomal substrate, and its degradation is prevented by over-expression of USP25m but not by other USP25 isoforms. In contrast,
ACTA1 and FLNC appear to be stable proteins, indicating that their interaction with USP25m is not related to their turnover
rate.
Received 7 November 2005; received after revision 7 January 2006; accepted 13 January 2006 相似文献
966.
Temussi PA 《Cellular and molecular life sciences : CMLS》2006,63(16):1876-1888
A few proteins, discovered mainly in tropical fruits, have a distinct sweet taste. These proteins have played an important
role towards a molecular understanding of the mechanisms of taste. Owing to the huge difference in size, between most sweeteners
and sweet proteins, it was believed that they must interact with a different receptor from that of small molecular weight
sweeteners. Recent modelling studies have shown that the single sweet taste receptor has multiple active sites and that the
mechanism of interaction of sweet proteins is intrinsically different from that of small sweeteners. Small molecular weight
sweeteners occupy small receptor cavities inside two subdomains of the receptor, whereas sweet proteins can interact with
the sweet receptor according to a mechanism called the ‘wedge model’ in which they bind to a large external cavity. This review
describes these mechanisms and outlines a history of sweet proteins.
Received 11 February 2006; received after revision 31 March 2006; accepted 11 May 2006 相似文献
967.
New protein folds have emerged throughout evolution, but it remains unclear how a protein fold can evolve while maintaining its function, particularly when fold changes require several sequential gene rearrangements. Here, we explored hypothetical evolutionary pathways linking different topological families of the DNA-methyltransferase superfamily. These pathways entail successive gene rearrangements through a series of intermediates, all of which should be sufficiently active to maintain the organism's fitness. By means of directed evolution, and starting from HaeIII methyltransferase (M.HaeIII), we selected all the required intermediates along these paths (a duplicated fused gene and duplicates partially truncated at their 5' or 3' coding regions) that maintained function in vivo. These intermediates led to new functional genes that resembled natural methyltransferases from three known classes or that belonged to a new class first seen in our evolution experiments and subsequently identified in natural genomes. Our findings show that new protein topologies can evolve gradually through multistep gene rearrangements and provide new insights regarding these processes. 相似文献
968.
969.
Common loss-of-function variants of the epidermal barrier protein filaggrin are a major predisposing factor for atopic dermatitis 总被引:21,自引:0,他引:21
Palmer CN Irvine AD Terron-Kwiatkowski A Zhao Y Liao H Lee SP Goudie DR Sandilands A Campbell LE Smith FJ O'Regan GM Watson RM Cecil JE Bale SJ Compton JG DiGiovanna JJ Fleckman P Lewis-Jones S Arseculeratne G Sergeant A Munro CS El Houate B McElreavey K Halkjaer LB Bisgaard H Mukhopadhyay S McLean WH 《Nature genetics》2006,38(4):441-446
Atopic disease, including atopic dermatitis (eczema), allergy and asthma, has increased in frequency in recent decades and now affects approximately 20% of the population in the developed world. Twin and family studies have shown that predisposition to atopic disease is highly heritable. Although most genetic studies have focused on immunological mechanisms, a primary epithelial barrier defect has been anticipated. Filaggrin is a key protein that facilitates terminal differentiation of the epidermis and formation of the skin barrier. Here we show that two independent loss-of-function genetic variants (R510X and 2282del4) in the gene encoding filaggrin (FLG) are very strong predisposing factors for atopic dermatitis. These variants are carried by approximately 9% of people of European origin. These variants also show highly significant association with asthma occurring in the context of atopic dermatitis. This work establishes a key role for impaired skin barrier function in the development of atopic disease. 相似文献
970.
Gandhi TK Zhong J Mathivanan S Karthick L Chandrika KN Mohan SS Sharma S Pinkert S Nagaraju S Periaswamy B Mishra G Nandakumar K Shen B Deshpande N Nayak R Sarker M Boeke JD Parmigiani G Schultz J Bader JS Pandey A 《Nature genetics》2006,38(3):285-293
We present the first analysis of the human proteome with regard to interactions between proteins. We also compare the human interactome with the available interaction datasets from yeast (Saccharomyces cerevisiae), worm (Caenorhabditis elegans) and fly (Drosophila melanogaster). Of >70,000 binary interactions, only 42 were common to human, worm and fly, and only 16 were common to all four datasets. An additional 36 interactions were common to fly and worm but were not observed in humans, although a coimmunoprecipitation assay showed that 9 of the interactions do occur in humans. A re-examination of the connectivity of essential genes in yeast and humans indicated that the available data do not support the presumption that the number of interaction partners can accurately predict whether a gene is essential. Finally, we found that proteins encoded by genes mutated in inherited genetic disorders are likely to interact with proteins known to cause similar disorders, suggesting the existence of disease subnetworks. The human interaction map constructed from our analysis should facilitate an integrative systems biology approach to elucidating the cellular networks that contribute to health and disease states. 相似文献