系统突变分析揭示了 N275 在 IgE 稳定性中的重要作用。

IF 3.5 2区 生物学 Q2 BIOTECHNOLOGY & APPLIED MICROBIOLOGY Biotechnology and Bioengineering Pub Date : 2024-08-20 DOI:10.1002/bit.28826
Shikha Kumari, Sanjay Ghosh, Saurabh Joshi, Ralf Guenther, Vanessa Siegmund, Achim Doerner
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引用次数: 0

摘要

治疗性抗体主要以 IgG 为基础。然而,正在进行的 MOv18 IgE 临床试验凸显了在癌症治疗中使用 IgE 抗体的潜力。针对 IgG 糖基化的大量研究为开发增强型生物治疗药物提供了合理的依据,但对 IgE 糖基化的分析仍然有限。之前关于 IgE 糖基化作用的研究提供了相互矛盾的数据,其中一项研究强调了 N275 和 T277 残基对 FcεRI 结合的重要性,而另一项研究则断言 IgE 糖基化在受体相互作用中没有意义。现有文献强调了 N275 位点的聚糖在与 FcεR1 受体结合和引发过敏性休克中的重要作用,但其他 IgE 糖基化位点在折叠或受体结合中的作用仍不明确。本研究系统研究了 IgE 重链中 N 链接糖基化位点的功能意义,验证了 N275 残基在 IgE 分泌和稳定性中的关键作用。将天冬酰胺置换成非胺基分子不会影响 IgE 的体外功能,但用天冬氨酸置换则会降低抗体产量。脱糖基化的 IgE 变体具有更高的疗效,这对糖基化对效应功能的传统重要性提出了挑战。总之,我们的研究揭示了 N-糖基化位点与 IgE 抗体结构-功能动态之间错综复杂的关系。此外,它还提供了对 IgE 支架的新见解,为开发更有效、更稳定的基于 IgE 的疗法铺平了道路。
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Systematic mutational analysis reveals an essential role of N275 in IgE stability

Therapeutic antibodies have predominantly been IgG-based. However, the ongoing clinical trial of MOv18 IgE has highlighted the potential of using IgE antibodies in cancer therapy. While extensive studies targeting IgG glycosylation resulted in a rational basis for the development of enhanced biotherapeutics, IgE glycosylation remains an area with limited analyses. Previous studies on the role of IgE glycosylation present conflicting data with one study emphasizing the importance of N275 and T277 residues for FcεRI binding whereas another asserts the nonsignificance of IgE glycosylation in receptor interaction. While existing literature underscores the significance of glycans at the N275 position for binding to FcεR1 receptor and initiation of anaphylaxis, the role of other IgE glycosylation sites in folding or receptor binding remains elusive. This study systematically investigates the functional significance of N-linked glycosylation sites in the heavy chain of IgE which validates the pivotal role of N275 residue in IgE secretion and stability. Replacement of this asparagine to non-amine group moieties does not affect IgE function in vitro, yet substitution with aspartic acid compromises antibody yield. The deglycosylated IgE variant exhibits superior efficacy, challenging the conventional importance of glycosylation for effector function. In summary, our study unveils an intricate relationship between N-glycosylation sites and the structural–functional dynamics of IgE antibodies. Furthermore, it offers novel insights into the IgE scaffold, paving the way for the development of more effective and stable IgE-based therapeutics.

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来源期刊
Biotechnology and Bioengineering
Biotechnology and Bioengineering 工程技术-生物工程与应用微生物
CiteScore
7.90
自引率
5.30%
发文量
280
审稿时长
2.1 months
期刊介绍: Biotechnology & Bioengineering publishes Perspectives, Articles, Reviews, Mini-Reviews, and Communications to the Editor that embrace all aspects of biotechnology. These include: -Enzyme systems and their applications, including enzyme reactors, purification, and applied aspects of protein engineering -Animal-cell biotechnology, including media development -Applied aspects of cellular physiology, metabolism, and energetics -Biocatalysis and applied enzymology, including enzyme reactors, protein engineering, and nanobiotechnology -Biothermodynamics -Biofuels, including biomass and renewable resource engineering -Biomaterials, including delivery systems and materials for tissue engineering -Bioprocess engineering, including kinetics and modeling of biological systems, transport phenomena in bioreactors, bioreactor design, monitoring, and control -Biosensors and instrumentation -Computational and systems biology, including bioinformatics and genomic/proteomic studies -Environmental biotechnology, including biofilms, algal systems, and bioremediation -Metabolic and cellular engineering -Plant-cell biotechnology -Spectroscopic and other analytical techniques for biotechnological applications -Synthetic biology -Tissue engineering, stem-cell bioengineering, regenerative medicine, gene therapy and delivery systems The editors will consider papers for publication based on novelty, their immediate or future impact on biotechnological processes, and their contribution to the advancement of biochemical engineering science. Submission of papers dealing with routine aspects of bioprocessing, description of established equipment, and routine applications of established methodologies (e.g., control strategies, modeling, experimental methods) is discouraged. Theoretical papers will be judged based on the novelty of the approach and their potential impact, or on their novel capability to predict and elucidate experimental observations.
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