AI Article Synopsis

  • The study presents a rapid and flexible technique called NanOBlast for screening antibodies from single B lymphocyte cells, crucial for developing therapeutic antibodies.
  • This method involves isolating antibody-secreting cells from mice, screening their secreted antibodies using advanced microfluidic technology, and identifying high-affinity anti-idiotypic mAbs.
  • The entire antibody discovery process can be completed in under 60 days, significantly speeding up drug development and enabling precise assays for measuring therapeutic IgG levels in patient serum.

Article Abstract

Accelerated development of monoclonal antibody (mAb) tool reagents is an essential requirement for the successful advancement of therapeutic antibodies in today's fast-paced and competitive drug development marketplace. Here, we describe a direct, flexible, and rapid nanofluidic optoelectronic single B lymphocyte antibody screening technique (NanOBlast) applied to the generation of anti-idiotypic reagent antibodies. Selectively enriched, antigen-experienced murine antibody secreting cells (ASCs) were harvested from spleen and lymph nodes. Subsequently, secreted mAbs from individually isolated, single ASCs were screened directly using a novel, integrated, high-content culture, and assay platform capable of manipulating living cells within microfluidic chip nanopens using structured light. Single-cell polymerase chain reaction-based molecular recovery on select anti-idiotypic ASCs followed by recombinant IgG expression and enzyme-linked immunosorbent assay (ELISA) characterization resulted in the recovery and identification of a diverse and high-affinity panel of anti-idiotypic reagent mAbs. Combinatorial ELISA screening identified both capture and detection mAbs, and enabled the development of a sensitive and highly specific ligand binding assay capable of quantifying free therapeutic IgG molecules directly from human patient serum, thereby facilitating important drug development decision-making. The ASC import, screening, and export discovery workflow on the chip was completed within 5 h, while the overall discovery workflow from immunization to recombinantly expressed IgG was completed in under 60 days.

Download full-text PDF

Source
http://www.ncbi.nlm.nih.gov/pmc/articles/PMC6748590PMC
http://dx.doi.org/10.1080/19420862.2019.1624126DOI Listing

Publication Analysis

Top Keywords

nanopens structured
8
structured light
8
drug development
8
anti-idiotypic reagent
8
discovery workflow
8
rapid single
4
single cell
4
antibody
4
cell antibody
4
antibody discovery
4

Similar Publications

Rapid single B cell antibody discovery using nanopens and structured light.

MAbs

January 2020

b Department of Therapeutic Discovery, Amgen Research , Burnaby , Canada.

Article Synopsis
  • The study presents a rapid and flexible technique called NanOBlast for screening antibodies from single B lymphocyte cells, crucial for developing therapeutic antibodies.
  • This method involves isolating antibody-secreting cells from mice, screening their secreted antibodies using advanced microfluidic technology, and identifying high-affinity anti-idiotypic mAbs.
  • The entire antibody discovery process can be completed in under 60 days, significantly speeding up drug development and enabling precise assays for measuring therapeutic IgG levels in patient serum.
View Article and Find Full Text PDF

Catalytic probe lithography: catalyst-functionalized scanning probes as nanopens for nanofabrication on self-assembled monolayers.

J Am Chem Soc

September 2004

Contribution from the Laboratory of Supramolecular Chemistry and Technology, MESA Institute for Nanotechnology, University of Twente, P.O. Box 217, 7500 AE Enschede, The Netherlands.

This article describes the use of scanning catalytic probe lithography for nanofabrication of patterns on self-assembled monolayers (SAMs) of reactive adsorbates. Catalytic writing was carried out by scanning over bis(omega-tert-butyldimethyl-siloxyundecyl)disulfide SAMs using 2-mercapto-5-benzimidazole sulfonic acid-functionalized gold-coated AFM tips. The acidic tips induced local hydrolysis of the silyl ether moieties in the contacted areas, and thus patterned surfaces were created.

View Article and Find Full Text PDF

Want AI Summaries of new PubMed Abstracts delivered to your In-box?

Enter search terms and have AI summaries delivered each week - change queries or unsubscribe any time!