Species | Histoplasma capsulatum | |||||||||||
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Lineage | Ascomycota; Eurotiomycetes; ; Ajellomycetaceae; Histoplasma; Histoplasma capsulatum | |||||||||||
CAZyme ID | HCEG_00989-t36_1-p1 | |||||||||||
CAZy Family | AA3 | |||||||||||
CAZyme Description | LysM domain-containing protein | |||||||||||
CAZyme Property |
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Genome Property |
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Gene Location |
Family | Start | End | Evalue | family coverage |
---|---|---|---|---|
GH55 | 191 | 825 | 1.7e-194 | 0.8391891891891892 |
Cdd ID | Domain | E-Value | qStart | qEnd | sStart | sEnd | Domain Description |
---|---|---|---|---|---|---|---|
176558 | PI-PLCXDc_like_2 | 1.14e-103 | 1037 | 1338 | 3 | 300 | Catalytic domain of uncharacterized hypothetical proteins similar to eukaryotic phosphatidylinositol-specific phospholipase C, X domain containing proteins. This subfamily corresponds to the catalytic domain present in a group of uncharacterized hypothetical proteins found in bacteria and fungi, which are similar to eukaryotic phosphatidylinositol-specific phospholipase C, X domain containing proteins (PI-PLCXD). The typical eukaryotic phosphoinositide-specific phospholipase C (PI-PLC, EC 3.1.4.11) has a multidomain organization that consists of a PLC catalytic core domain, and various regulatory domains. The catalytic core domain is assembled from two highly conserved X- and Y-regions split by a divergent linker sequence. In contrast, eukaryotic PI-PLCXDs contain a single TIM-barrel type catalytic domain, X domain, and are more closely related to bacterial PI-PLCs, which participate in Ca2+-independent PI metabolism, hydrolyzing the membrane lipid phosphatidylinositol (PI) to produce phosphorylated myo-inositol and diacylglycerol (DAG). Although the biological function of eukaryotic PI-PLCXDs still remains unclear, it may distinct from that of typical eukaryotic PI-PLCs. |
176529 | PI-PLCXDc_like | 3.62e-47 | 1037 | 1338 | 3 | 288 | Catalytic domain of phosphatidylinositol-specific phospholipase C X domain containing and similar proteins. This family corresponds to the catalytic domain present in phosphatidylinositol-specific phospholipase C X domain containing proteins (PI-PLCXD) which are bacterial phosphatidylinositol-specific phospholipase C (PI-PLC, EC 4.6.1.13) sequence homologs mainly found in eukaryota. The typical eukaryotic phosphoinositide-specific phospholipase C (PI-PLC, EC 3.1.4.11) have a multidomain organization that consists of a PLC catalytic core domain, and various regulatory domains. The catalytic core domain is assembled from two highly conserved X- and Y-regions split by a divergent linker sequence. In contrast, eukaryotic PI-PLCXDs and their bacterial homologs contain a single TIM-barrel type catalytic domain, X domain, which is more closely related to that of bacterial PI-PLCs. Although the biological function of eukaryotic PI-PLCXDs still remains unclear, it may be distinct from that of typical eukaryotic PI-PLCs. |
403800 | Pectate_lyase_3 | 3.23e-37 | 191 | 330 | 62 | 212 | Pectate lyase superfamily protein. This family of proteins possesses a beta helical structure like Pectate lyase. This family is most closely related to glycosyl hydrolase family 28. |
176500 | PI-PLCc_bacteria_like | 3.23e-30 | 1037 | 1317 | 3 | 262 | Catalytic domain of bacterial phosphatidylinositol-specific phospholipase C and similar proteins. This subfamily corresponds to the catalytic domain present in bacterial phosphatidylinositol-specific phospholipase C (PI-PLC, EC 4.6.1.13) and their sequence homologs found in eukaryota. Bacterial PI-PLCs participate in Ca2+-independent PI metabolism, hydrolyzing the membrane lipid phosphatidylinositol (PI) to produce phosphorylated myo-inositol and diacylglycerol (DAG). Although their precise physiological function remains unclear, bacterial PI-PLCs may function as virulence factors in some pathogenic bacteria. Bacterial PI-PLCs contain a single TIM-barrel type catalytic domain. Its catalytic mechanism is based on general base and acid catalysis utilizing two well conserved histidines, and consists of two steps, a phosphotransfer and a phosphodiesterase reaction. Eukaryotic homologs in this family are named as phosphatidylinositol-specific phospholipase C X domain containing proteins (PI-PLCXD). They are distinct from the typical eukaryotic phosphoinositide-specific phospholipases C (PI-PLC, EC 3.1.4.11), which have a multidomain organization that consists of a PLC catalytic core domain, and various regulatory domains. The catalytic core domain is assembled from two highly conserved X- and Y-regions split by a divergent linker sequence. In contrast, eukaryotic PI-PLCXDs contain a single TIM-barrel type catalytic domain, X domain, which is closely related to that of bacterial PI-PLCs. Although the biological function of eukaryotic PI-PLCXDs still remains unclear, it may be distinct from that of typical eukaryotic PI-PLCs. This family also includes a distinctly different type of eukaryotic PLC, glycosylphosphatidylinositol-specific phospholipase C (GPI-PLC), an integral membrane protein characterized in the protozoan parasite Trypanosoma brucei. T. brucei GPI-PLC hydrolyzes the GPI-anchor on the variant specific glycoprotein (VSG), releasing dimyristyl glycerol (DMG), which may facilitate the evasion of the protozoan to the host's immune system. It does not require Ca2+ for its activity and is more closely related to bacterial PI-PLCs, but not mammalian PI-PLCs. |
176557 | PI-PLCXDc_like_1 | 4.49e-09 | 1048 | 1163 | 14 | 119 | Catalytic domain of uncharacterized hypothetical proteins similar to eukaryotic phosphatidylinositol-specific phospholipase C, X domain containing proteins. This subfamily corresponds to the catalytic domain present in a group of uncharacterized hypothetical proteins found in bacteria and fungi, which are similar to eukaryotic phosphatidylinositol-specific phospholipase C, X domain containing proteins (PI-PLCXD). The typical eukaryotic phosphoinositide-specific phospholipase C (PI-PLC, EC 3.1.4.11) has a multidomain organization that consists of a PLC catalytic core domain, and various regulatory domains. The catalytic core domain is assembled from two highly conserved X- and Y-regions split by a divergent linker sequence. In contrast, eukaryotic PI-PLCXDs contain a single TIM-barrel type catalytic domain, X domain, and are more closely related to bacterial PI-PLCs, which participate in Ca2+-independent PI metabolism, hydrolyzing the membrane lipid phosphatidylinositol (PI) to produce phosphorylated myo-inositol and diacylglycerol (DAG). Although the biological function of eukaryotic PI-PLCXDs still remains unclear, it may distinct from that of typical eukaryotic PI-PLCs. |
Hit ID | E-Value | Query Start | Query End | Hit Start | Hit End |
---|---|---|---|---|---|
0.0 | 1 | 1380 | 1 | 1472 | |
0.0 | 271 | 1380 | 2 | 1133 | |
8.98e-315 | 54 | 1353 | 63 | 1430 | |
1.59e-271 | 37 | 843 | 39 | 932 | |
9.13e-271 | 37 | 843 | 39 | 932 |
Hit ID | E-Value | Query Start | Query End | Hit Start | Hit End | Description |
---|---|---|---|---|---|---|
2.33e-128 | 195 | 818 | 101 | 734 | Chain A, Beta-1,3-glucanase [Thermochaetoides thermophila],5M60_A Chain A, Beta-1,3-glucanase [Thermochaetoides thermophila] |
|
8.08e-121 | 191 | 810 | 118 | 728 | Chain A, Glucan 1,3-beta-glucosidase [Phanerodontia chrysosporium],3EQN_B Chain B, Glucan 1,3-beta-glucosidase [Phanerodontia chrysosporium],3EQO_A Chain A, Glucan 1,3-beta-glucosidase [Phanerodontia chrysosporium],3EQO_B Chain B, Glucan 1,3-beta-glucosidase [Phanerodontia chrysosporium] |
Hit ID | E-Value | Query Start | Query End | Hit Start | Hit End | Description |
---|---|---|---|---|---|---|
4.20e-117 | 191 | 823 | 135 | 859 | Probable glucan endo-1,3-beta-glucosidase ARB_02077 OS=Arthroderma benhamiae (strain ATCC MYA-4681 / CBS 112371) OX=663331 GN=ARB_02077 PE=1 SV=1 |
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4.34e-104 | 195 | 828 | 144 | 776 | Glucan 1,3-beta-glucosidase OS=Cochliobolus carbonum OX=5017 GN=EXG1 PE=1 SV=1 |
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8.32e-42 | 372 | 825 | 296 | 744 | Glucan endo-1,3-beta-glucosidase BGN13.1 OS=Trichoderma harzianum OX=5544 GN=bgn13.1 PE=1 SV=1 |
Other | SP_Sec_SPI | CS Position |
---|---|---|
0.718649 | 0.281364 |
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