Development of a Spacer-optimized Quenchbody against Tumor Necrosis Factor Alpha

Author:

Yun Hanool,Ueda Hiroshi,Jeong Hee-Jin

Publisher

Springer Science and Business Media LLC

Subject

Biomedical Engineering,Applied Microbiology and Biotechnology,Bioengineering,Biotechnology

Reference47 articles.

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2. Kitagawa, S., A. Yuo, M. Yagisawa, E. Azuma, M. Yoshida, Y. Furukawa, M. Takahashi, J. Masuyama, and F. Takaku (1996) Activation of human monocyte functions by tumor necrosis factor: rapid priming for enhanced release of superoxide and erythrophagocytosis, but no direct triggering of superoxide release. Exp. Hematol. 24: 559–567.

3. Lay, J. D., C. J. Tsao, J. Y. Chen, M. E. Kadin, and I. J. Su (1997) Upregulation of tumor necrosis factor-alpha gene by Epstein-Barr virus and activation of macrophages in Epstein-Barr virus-infected T cells in the pathogenesis of hemophagocytic syndrome. J. Clin. Invest. 100: 1969–1979.

4. Saito, K., D. Kobayashi, M. Sasaki, H. Araake, T. Kida, A. Yagihashi, T. Yajima, H. Kameshima, and N. Watanabe (1999) Detection of human serum tumor necrosis factor-alpha in healthy donors, using a highly sensitive immuno-PCR assay. Clin. Chem. 45: 665–669.

5. Satriano, J. A. M. Shuldiner, K. Hora, Y. Xing, Z. Shan, and D. Schlondorff (1993) Oxygen radicals as second messengers for expression of the monocyte chemoattractant protein, JE/MCP-1, and the monocyte colony-stimulating factor, CSF-1, in response to tumor necrosis factor-alpha and immunoglobulin G. Evidence for involvement of reduced nicotinamide adenine dinucleotide phosphate (NADPH)-dependent oxidase. J. Clin. Invest. 92: 1564–1571.

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