The glycosylation design space for recombinant lysosomal replacement enzymes produced in CHO cells

Пространство дизайна гликозилирования рекомбинантных ферментов для заместительной терапии лизосомных заболеваний, продуцируемых в клетках CHO
Weihua Tian, Zilu Ye, Shengjun Wang, Morten Alder Schulz, Julie Van Coillie, Lingbo Sun, Yen‐Hsi Chen, Yoshiki Narimatsu, Lars Hestbjerg Hansen, Claus Kristensen, Ulla Mandel, Eric Bennett, Siamak Jabbarzadeh‐Tabrizi, Raphael Schiffmann, Jin‐Song Shen, Sergey Y. Vakhrushev, Henrik Clausen, Zhang Yang
2019-04-30

Chinese hamster ovary cellsenzyme replacement therapyglycosylation design spacerecombinant lysosomal enzymesα2-3 sialylation
Lysosomal replacement enzymes are essential therapeutic options for rare congenital lysosomal enzyme deficiencies, but enzymes in clinical use are only partially effective due to short circulatory half-life and inefficient biodistribution. Replacement enzymes are primarily taken up by cell surface glycan receptors, and glycan structures influence uptake, biodistribution, and circulation time. It has not been possible to design and systematically study effects of different glycan features. Here we present a comprehensive gene engineering screen in Chinese hamster ovary cells that enables production of lysosomal enzymes with N-glycans custom designed to affect key glycan features guiding cellular uptake and circulation. We demonstrate distinct circulation time and organ distribution of selected glycoforms of α-galactosidase A in a Fabry disease mouse model, and find that an α2-3 sialylated glycoform designed to eliminate uptake by the mannose 6-phosphate and mannose receptors exhibits improved circulation time and targeting to hard-to-reach organs such as heart. The developed design matrix and engineered CHO cell lines enables systematic studies towards improving enzyme replacement therapeutics.
1
A comprehensive gene-engineering screen in CHO cells enables recombinant lysosomal enzymes with custom-designed N-glycan features.
2
An α2-3-sialylated glycoform designed to avoid mannose 6-phosphate and mannose receptor uptake improved circulation time and targeted hard-to-reach organs, including the heart.
3
Selected α-galactosidase A glycoforms showed distinct circulation times and organ distributions in a Fabry disease mouse model.
4
The glycosylation design matrix and engineered CHO cell lines enable systematic investigation and optimization of enzyme-replacement therapeutics.

Recombinant lysosomal replacement enzymes produced in engineered Chinese hamster ovary (CHO) cells, including glycoforms of α-galactosidase A

The effects of custom-designed N-glycan features on cellular uptake, circulation time, organ biodistribution, and targeting of lysosomal replacement enzymes

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2019-04-30
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Authors
Weihua Tian
Zilu Ye
Shengjun Wang
Morten Alder Schulz
Julie Van Coillie
Lingbo Sun
Yen‐Hsi Chen
Yoshiki Narimatsu
Lars Hestbjerg Hansen
Claus Kristensen
Ulla Mandel
Eric Bennett
Siamak Jabbarzadeh‐Tabrizi
Raphael Schiffmann
Jin‐Song Shen
Sergey Y. Vakhrushev
Henrik Clausen
Zhang Yang
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