Species | Cryptococcus gattii VGII | |||||||||||
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Lineage | Arthropoda; Insecta; ; Eriococcidae; Cryptococcus; Cryptococcus gattii VGII | |||||||||||
CAZyme ID | KGB75402.1 | |||||||||||
CAZy Family | CE17 | |||||||||||
CAZyme Description | beta-1 | |||||||||||
CAZyme Property |
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Genome Property |
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Gene Location |
EC | 2.4.1.142:10 | 2.4.1.-:1 |
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Family | Start | End | Evalue | family coverage |
---|---|---|---|---|
GT33 | 49 | 497 | 4.2e-158 | 0.9905882352941177 |
Cdd ID | Domain | E-Value | qStart | qEnd | sStart | sEnd | Domain Description |
---|---|---|---|---|---|---|---|
340843 | GT33_ALG1-like | 0.0 | 48 | 500 | 3 | 411 | chitobiosyldiphosphodolichol beta-mannosyltransferase and similar proteins. This family is most closely related to the GT33 family of glycosyltransferases. The yeast gene ALG1 has been shown to function as a mannosyltransferase that catalyzes the formation of dolichol pyrophosphate (Dol-PP)-GlcNAc2Man from GDP-Man and Dol-PP-Glc-NAc2, and participates in the formation of the lipid-linked precursor oligosaccharide for N-glycosylation. In humans ALG1 has been associated with the congenital disorders of glycosylation (CDG) designated as subtype CDG-Ik. |
215155 | PLN02275 | 1.32e-134 | 49 | 447 | 5 | 371 | transferase, transferring glycosyl groups |
223515 | RfaB | 7.25e-08 | 90 | 473 | 25 | 367 | Glycosyltransferase involved in cell wall bisynthesis [Cell wall/membrane/envelope biogenesis]. |
340844 | GT4_UGDG-like | 4.87e-07 | 333 | 476 | 230 | 355 | UDP-Glc:1,2-diacylglycerol 3-a-glucosyltransferase and similar proteins. This family is most closely related to the GT1 family of glycosyltransferases. UDP-glucose-diacylglycerol glucosyltransferase (EC 2.4.1.337, UGDG; also known as 1,2-diacylglycerol 3-glucosyltransferase) catalyzes the transfer of glucose from UDP-glucose to 1,2-diacylglycerol forming 3-D-glucosyl-1,2-diacylglycerol. |
340816 | Glycosyltransferase_GTB-type | 3.57e-06 | 332 | 433 | 139 | 235 | glycosyltransferase family 1 and related proteins with GTB topology. Glycosyltransferases catalyze the transfer of sugar moieties from activated donor molecules to specific acceptor molecules, forming glycosidic bonds. The acceptor molecule can be a lipid, a protein, a heterocyclic compound, or another carbohydrate residue. The structures of the formed glycoconjugates are extremely diverse, reflecting a wide range of biological functions. The members of this family share a common GTB topology, one of the two protein topologies observed for nucleotide-sugar-dependent glycosyltransferases. GTB proteins have distinct N- and C- terminal domains each containing a typical Rossmann fold. The two domains have high structural homology despite minimal sequence homology. The large cleft that separates the two domains includes the catalytic center and permits a high degree of flexibility. |
Hit ID | E-Value | Query Start | Query End | Hit Start | Hit End |
---|---|---|---|---|---|
0.0 | 1 | 506 | 1 | 506 | |
0.0 | 1 | 506 | 1 | 506 | |
0.0 | 1 | 506 | 1 | 506 | |
0.0 | 1 | 506 | 1 | 506 | |
0.0 | 1 | 506 | 1 | 506 |
Hit ID | E-Value | Query Start | Query End | Hit Start | Hit End | Description |
---|---|---|---|---|---|---|
2.93e-102 | 49 | 496 | 33 | 457 | Chitobiosyldiphosphodolichol beta-mannosyltransferase OS=Pongo abelii OX=9601 GN=ALG1 PE=2 SV=1 |
|
2.57e-100 | 49 | 496 | 33 | 457 | Chitobiosyldiphosphodolichol beta-mannosyltransferase OS=Homo sapiens OX=9606 GN=ALG1 PE=1 SV=2 |
|
5.40e-98 | 49 | 496 | 33 | 457 | Chitobiosyldiphosphodolichol beta-mannosyltransferase OS=Mus musculus OX=10090 GN=Alg1 PE=1 SV=3 |
|
3.04e-92 | 51 | 474 | 7 | 445 | UDP-glycosyltransferase TURAN OS=Arabidopsis thaliana OX=3702 GN=TUN PE=2 SV=1 |
|
1.80e-84 | 53 | 488 | 6 | 455 | Chitobiosyldiphosphodolichol beta-mannosyltransferase OS=Dictyostelium discoideum OX=44689 GN=alg1 PE=2 SV=1 |
Other | SP_Sec_SPI | CS Position |
---|---|---|
1.000062 | 0.000000 |
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