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Antigen processing: Ubiquitination & Proteasome degradation

Reactome ID: R-HSA-983168

中文名称

抗原加工:泛素化及蛋白酶体降解

通路描述

细胞内外源或异常宿主蛋白被切割成精确大小的肽段,以便加载到 I 类 MHC 分子上并呈递给细胞毒性 T 细胞。泛素 -26S 蛋白酶体系统在这些 I 类 MHC 抗原的产生中起核心作用。
泛素化是指将泛素添加到底物蛋白的赖氨酸残基上,形成多泛素化底物的机制。该过程涉及三类酶:泛素激活酶(E1)、泛素连接酶(E2)和泛素连接酶(E3)。通过赖氨酸 -48(K48)的泛素化通常靶向底物蛋白进行蛋白酶体降解。负责降解 K48-泛素化蛋白的蛋白酶体是 26S 蛋白酶体。该蛋白酶体是一种由 20S(催化核心颗粒)和 19S(调节颗粒)组成的双亚基蛋白复合物。蛋白酶体通过将大多数外源和非功能性蛋白降解为短肽来消除细胞中的大部分外源和非功能性蛋白;仅有一小部分生成的肽段长度正确,可被 MHC 类 I 系统呈递。据计算,形成单个稳定的 MHC 类 I 复合物在细胞表面需要降解 994 至 3122 个蛋白质分子,平均效率为 1/2000(Kloetzel et al. 2004, Princiotta et al. 2003)。
英文描述
Antigen processing: Ubiquitination & Proteasome degradation Intracellular foreign or aberrant host proteins are cleaved into peptide fragments of a precise size, such that they can be loaded on to class I MHC molecules and presented externally to cytotoxic T cells. The ubiquitin-26S proteasome system plays a central role in the generation of these class I MHC antigens.
Ubiquitination is the mechanism of adding ubiquitin to lysine residues on substrate protein leading to the formation of a polyubiquitinated substrate. This process involves three classes of enzyme, an E1 ubiquitin-activating enzyme, an E2 ubiquitin-conjugating enzyme, and an E3 ubiquitin ligase. Polyubiquitination through lysine-48 (K48) generally targets the substrate protein for proteasomal destruction. The protease responsible for the degradation of K48-polyubiquitinated proteins is the 26S proteasome. This proteasome is a two subunit protein complex composed of the 20S (catalytic core particle) and 19S (regulatory particle) proteasome complexes. The proteasome eliminates most of the foreign and non-functional proteins from the cell by degrading them into short peptides; only a small fraction of the peptides generated are of the correct length to be presented by the MHC class I system. It has been calculated that between 994 and 3122 protein molecules have to be degraded for the formation of a single, stable MHC class I complex at the cell surface, with an average efficiency of 1 in 2000 (Kloetzel et al. 2004, Princiotta et al. 2003).

所含基因

295 个基因
ADRM1 ANAPC1 ANAPC10 ANAPC11 ANAPC13 ANAPC2 ANAPC4 ANAPC5 ANAPC7 AREL1 ARIH2 ASB1 ASB10 ASB11 ASB12 ASB13 ASB14 ASB15 ASB16 ASB17 ASB18 ASB2 ASB3 ASB4 ASB5 ASB6 ASB7 ASB8 ASB9 ATG7 BLMH BTBD1 BTBD6 BTRC CBLB CCNF CDC16 CDC20 CDC23 CDC26 CDC27 CDC34 CUL1 CUL2 CUL3 CUL5 CUL7 DET1 DTX3L DZIP3 ELOB ELOC FBXL12 FBXL13 FBXL14 FBXL15 FBXL16 FBXL18 FBXL19 FBXL20 FBXL21 FBXL22 FBXL3 FBXL4 FBXL5 FBXL7 FBXL8 FBXO10 FBXO11 FBXO15 FBXO17 FBXO2 FBXO21 FBXO22 FBXO27 FBXO30 FBXO31 FBXO32 FBXO4 FBXO40 FBXO41 FBXO44 FBXO6 FBXO7 FBXO9 FBXW10 FBXW11 FBXW12 FBXW2 FBXW4 FBXW5 FBXW7 FBXW8 FBXW9 FZR1 GAN GLMN HACE1 HECTD1 HECTD2 HECTD3 HECW2 HERC1 HERC2 HERC3 HERC4 HERC5 HERC6 HUWE1 ITCH KBTBD13 KBTBD6 KBTBD7 KBTBD8 KCTD6 KCTD7 KEAP1 KLHL11 KLHL13 KLHL2 KLHL20 KLHL21 KLHL22 KLHL25 KLHL3 KLHL41 KLHL42 KLHL5 KLHL9 LMO7 LNPEP LNX1 LONRF1 LRR1 LRRC41 LRSAM1 LTN1 MEX3C MGRN1 MIB2 MKRN1 MYLIP NEDD4 NEDD4L NPEPPS PJA1 PJA2 PRKN PSMA1 PSMA2 PSMA3 PSMA4 PSMA5 PSMA6 PSMA7 PSMB1 PSMB2 PSMB3 PSMB4 PSMB5 PSMB6 PSMB7 PSMC1 PSMC2 PSMC3 PSMC4 PSMC5 PSMC6 PSMD1 PSMD11 PSMD12 PSMD13 PSMD14 PSMD2 PSMD3 PSMD6 PSMD7 PSMD8 RBBP6 RBCK1 RBX1 RCHY1 RLIM RNF111 RNF114 RNF115 RNF123 RNF126 RNF130 RNF138 RNF14 RNF144B RNF182 RNF19A RNF19B RNF213 RNF217 RNF220 RNF25 RNF34 RNF4 RNF41 RNF6 RPS27A SEM1 SH3RF1 SIAH1 SIAH2 SKP1 SKP2 SMURF1 SMURF2 SOCS1 SOCS3 SPSB1 SPSB2 SPSB4 STUB1 THOP1 TPP2 TRAF7 TRAIP TRIM11 TRIM21 TRIM32 TRIM36 TRIM37 TRIM39 TRIM4 TRIM41 TRIM50 TRIM63 TRIM69 TRIM71 TRIM9 TRIP12 UBA1 UBA3 UBA5 UBA52 UBA6 UBA7 UBAC1 UBB UBC UBE2A UBE2B UBE2C UBE2D1 UBE2D2 UBE2D3 UBE2D4 UBE2E1 UBE2E2 UBE2E3 UBE2F UBE2G1 UBE2G2 UBE2H UBE2J1 UBE2J2 UBE2K UBE2L3 UBE2L6 UBE2M UBE2N UBE2O UBE2Q1 UBE2Q2 UBE2R2 UBE2S UBE2U UBE2V1 UBE2V2 UBE2W UBE2Z UBE3A UBE3B UBE3C UBE3D UBE4A UBOX5 UBR1 UBR2 UBR4 UFL1 UNKL VHL VPRBP WSB1 WWP1 ZBTB16 ZNF645 ZNRF1 ZNRF2