| Literature DB >> 21722349 |
Saikat Mukhopadhyay1, Peter K Jackson.
Abstract
The tubby mouse shows a tripartite syndrome characterized by maturity-onset obesity, blindness and deafness. The causative gene Tub is the founding member of a family of related proteins present throughout the animal and plant kingdoms, each characterized by a signature carboxy-terminal tubby domain. This domain consists of a β barrel enclosing a central α helix and binds selectively to specific membrane phosphoinositides. The vertebrate family of tubby-like proteins (TULPs) includes the founding member TUB and the related TULPs, TULP1 to TULP4. Tulp1 is expressed in the retina and mutations in TULP1 cause retinitis pigmentosa in humans; Tulp3 is expressed ubiquitously in the mouse embryo and is important in sonic hedgehog (Shh)-mediated dorso-ventral patterning of the spinal cord. The amino terminus of these proteins is diverse and directs distinct functions. In the best-characterized example, the TULP3 amino terminus binds to the IFT-A complex, a complex important in intraflagellar transport in the primary cilia, through a short conserved domain. Thus, the tubby family proteins seem to serve as bipartite bridges through their phosphoinositide-binding tubby and unique amino-terminal functional domains, coordinating multiple signaling pathways, including ciliary G-protein-coupled receptor trafficking and Shh signaling. Molecular studies on this functionally diverse protein family are beginning to provide us with remarkable insights into the tubby-mouse syndrome and other related diseases.Entities:
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Year: 2011 PMID: 21722349 PMCID: PMC3218838 DOI: 10.1186/gb-2011-12-6-225
Source DB: PubMed Journal: Genome Biol ISSN: 1474-7596 Impact factor: 13.583
Figure 1Evolutionary relationships and domain architecture of the tubby family proteins. (a) Evolutionary relationships between the tubby family proteins from different species. Sequences were aligned using the neighbor-joining method in ClustalW2 and the phylogenetic tree was drawn using Mega 5 [67]. Bootstrap values were calculated over 1,000 iterations and values greater than 50% are shown as percentages next to branches. The proportion of amino acid differences is indicated by the bar below. Note that the IFT-A complex protein WDR35 is related to TULP4. The NCBI accession numbers of the various members are as follows: Hs TUB, NP_813977.1; Hs TULP3, NP_003315.2; Hs TULP2, NP_003314.2; Hs TULP1, NP_003313.3; Hs TULP4, NP_064630.2; Dm TULP, NP_995911.1; Ce TUB-1, NP_495710.1; Cr TLP2, XP_001692116.1; Ce TUB-2, NP_490913.2; Dm TUSP, NP_651573.4; AtTLP7, NP_564627.1; AtTLP10, NP_173899.1; AtTLP5, NP_564485.1; AtTLP1, NP_849894.1; AtTLP6, NP_175160.2; AtTLP2, NP_849975.1; AtTLP3, NP_850481.1; AtTLP9, NP_187289.1; AtTLP11, NP_197369.2; AtTLP4, NP_176385.1; AtTLP8, NP_173059.1; Hs WDR35, NP_001006658.1. For a more detailed phylogenetic tree see http://www.treefam.org (accession TF314076). (b) Comparison of the domain structures of the tubby family proteins from different species. The percentage amino acid similarity of the tubby domain with respect to the canonical human TUB tubby domain is shown below each protein. Hs, Homo sapiens; Dm, Drosophila melanogaster; Ce, Caenorhabditis elegans; Cr, Chlamydomonas reinhardtii; At, Arabidopsis thaliana; IFT-A, Intraflagellar transport complex A; SOCS, suppressor of cytokine signaling.
Figure 2Functional regions in the tubby family proteins. (a) Ribbon diagram of the tubby domain from Tub [5]. Helices and β sheets are depicted as cylinders and arrows, respectively. The structure consists of a 12-stranded β barrel filled by a central hydrophobic helix. (b) Co-crystal structure of the tubby domain from Tub bound to GPMI-P2, a soluble analog of the head group from PIP2 [6]. The PIP2 analog is shown in a van der Waals sphere representation. The PIP2 analog binds at a site on the tubby β-barrel adjacent to helix 6A. Panels (a) and (b) reproduced with permission from [5] and [6], respectively. (c) TULP3 binds to the IFT-A complex. A summary cartoon of the IFT-A complex subunits and their association with TULP3 is shown. The black dotted line encircles the 'core' complex subunits, and the blue dashed line contains the accessory subunits. TULP3 associates with the 'core' IFT-A complex, and this interaction is dependent on an amino-terminal region conserved between TULP3, TUB and TULP2. TPR, tetratricopeptide repeat.
Figure 3Functional regulation of the tubby family proteins. (a) The IFT-A core recruits TULP3 by binding to its IFT-A binding region in the amino terminus. The TULP3 amino-terminal fragment inhibits TULP3 loading to the IFT-A complex. The IFT-A-TULP3 interaction gates ciliary GPCRs by PIP2 binding through TULP3's tubby domain. A full-length TULP3 with defective PIP2 binding is thought to inhibit loading of TULP3-IFT-A to the PIP2 vesicles [26]. Thus, TULP3 bridges the membrane phosphoinositides and IFT-A complex to gate ciliary GPCR trafficking. (b) The tubby domain is attached to membrane PIP2. Following activation of Gαq to Gαq* by GPCR activation, PIP2 hydrolysis causes the tubby domain to be dislodged from the membrane [6]. IP3, inositol triphosphate; DAG, diacylglycerol; PLC, phospholipase C.