In Silico Structural Dynamics and Downstream Bioprocess of Recombinant Human SUMO-IL-33

Interleukin-33 (IL-33) is a therapeutic target in inflammatory diseases, yet inhibitor screening is hindered by high commercial protein costs. While expressing IL-33 as a SUMO fusion protein overcomes yield limitations in Escherichia coli, whether this intact chimera can directly serve as a screening surrogate remains unresolved. Here, we combined in silico simulations with empirical bioprocess optimization to establish a high-yield pipeline for native human IL-33 production. AI-based structure predictions (AlphaFold and RoseTTAFold) revealed distinct inter-domain dynamics mediated by a flexible linker. Molecular dynamics simulations of the compact RoseTTAFold model suggested potential steric occlusion near receptor-binding interfaces, whereas AlphaFold models exhibited extended conformations, highlighting model-dependent variations that warrant further structural verification. To restore accessibility, tag cleavage was optimized using 1.0% (mol/mol) SUMO protease at 4 °C for 1 h, achieving near-complete digestion. Sandwich ELISA demonstrated an 87.6% molar epitope recognition recovery for cleaved IL-33 versus only 12.0% for the intact fusion, providing empirical evidence of substantial functional epitope masking by the SUMO tag. Two-step IMAC purification yielded ~19% mass recovery (~32.6% molar recovery). These findings demonstrate that tag removal is operationally essential for IL-33 functional availability in screening applications.

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Publication Details

Journal
Biomolecules
Published
2026-10-04
DOI
https://doi.org/10.3390/biom16101451
Primary Topic
Protein purification and stability
Type
article
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article

In Silico Structural Dynamics and Downstream Bioprocess of Recombinant Human SUMO-IL-33

Khac‐Minh Thai, Quoc‐Thai Nguyen, Tan Thanh Mai, Long-Hung Dinh Pham et al.
Biomolecules
Protein purification and stability
article

In Silico Structural Dynamics and Downstream Bioprocess of Recombinant Human SUMO-IL-33

Khac‐Minh Thai, Quoc‐Thai Nguyen, Tan Thanh Mai, Long-Hung Dinh Pham, Thua-Phong Lam, Hoang-Han Do, Kim-Hung Nguyen, Minh-Quan Le, Minh-Thanh Quach
article en

Abstract

Interleukin-33 (IL-33) is a therapeutic target in inflammatory diseases, yet inhibitor screening is hindered by high commercial protein costs. While expressing IL-33 as a SUMO fusion protein overcomes yield limitations in Escherichia coli, whether this intact chimera can directly serve as a screening surrogate remains unresolved. Here, we combined in silico simulations with empirical bioprocess optimization to establish a high-yield pipeline for native human IL-33 production. AI-based structure predictions (AlphaFold and RoseTTAFold) revealed distinct inter-domain dynamics mediated by a flexible linker. Molecular dynamics simulations of the compact RoseTTAFold model suggested potential steric occlusion near receptor-binding interfaces, whereas AlphaFold models exhibited extended conformations, highlighting model-dependent variations that warrant further structural verification. To restore accessibility, tag cleavage was optimized using 1.0% (mol/mol) SUMO protease at 4 °C for 1 h, achieving near-complete digestion. Sandwich ELISA demonstrated an 87.6% molar epitope recognition recovery for cleaved IL-33 versus only 12.0% for the intact fusion, providing empirical evidence of substantial functional epitope masking by the SUMO tag. Two-step IMAC purification yielded ~19% mass recovery (~32.6% molar recovery). These findings demonstrate that tag removal is operationally essential for IL-33 functional availability in screening applications.

BiomoleculesVol. 16(10)
Uppsala University (SE), Vietnam National University Ho Chi Minh City (VN), University of Medicine and Pharmacy at Ho Chi Minh City (VN), Trường Đại học Khoa học Sức khỏe (VN), Imperial College London (GB)
Openalex Percentile: Top 21%
Protein purification and stability
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