| Literature DB >> 31964343 |
Mercè Farràs1, Ramón Román2, Marc Camps3, Joan Miret2, Óscar Martínez3, Xavier Pujol3, Antoni Casablancas2, Jordi Joan Cairó2.
Abstract
BACKGROUND: Monoclonal antibodies (mAbs) and their derivatives have become one of the most important classes of therapeutic drugs. Their multiple applications increased the interest for understanding their complex structure. In vivo, animal cells are able to fold mAbs correctly (Song et al, J Biosci Bioeng 110:135-40, 2010), whereas previous in vitro approaches were scarce and mostly unsuccessful.Entities:
Keywords: 2-mercaptoethanol; Affinity chromatography; Anti-HER2; Disulfide bonds; Folding; Glutathione; HC; Immunoglobulin; LC; Non-covalent; Protein structure; Renaturalization; Slow dialysis; Trastuzumab; Urea; mAb; mAb assembly
Year: 2020 PMID: 31964343 PMCID: PMC6975058 DOI: 10.1186/s12860-019-0244-x
Source DB: PubMed Journal: BMC Mol Cell Biol ISSN: 2661-8850
Fig. 1SDS-PAGE of reduced and refolded anti-HER2. M: molecular weight marker; i: intact mAb; r/dn: reduced and denatured mAb; dia: mAb dialyzed by slow dialysis; FT: flow-though of the affinity chromatography MAb Select SURE; peak: elution peak of the affinity chromatography
Isolated antigen HER2 recognition in the ELISA test to assess the mAb folding without chains physical separation
| Molecule | Trastuzumab | Denatured trastuzumab | Renatured trastuzumab |
|---|---|---|---|
| Isolated antigen HER2 recognition | 51 ± 5 AU/μg | ND | 22 ± 1 AU/μg |
Fig. 2mAb chains separation with exclusion size chromatography in ÄKTA Avant system under reducing and denaturing conditions. a. UNICORN Software chromatogram, where absorbance at 280 nm is shaded in blue and absorbance at 260 nm is shaded in red. b. SDS-PAGE gel corresponding with the isolated peaks collected in the chromatography
Fig. 8Slow dialysis scheme. The feed bottle was set in vacuum so the dialysis buffer feeds it at the same speed as the pump 1 feeds the reservoir. Pump 1 and pump 2 speed is 0,25 mL/min
Fig. 3Gel SDS-PAGE of refolding sequence of LC and HC. a. LC refolding process. M: molecular marker; Sx: Superdex peak of denatured and reduced LC; Conc: concentrated; Dia: LC diafiltered by slow dialysis; FT: flow-through of Capto L; Peak: Capto L elution peak. b. HC refolding process. M: molecular marker; i: Superdex peak of denatured and reduced HC; dia: HC diafiltered by slow dialysis; FT: flow-through of MAb Select SURE; peak: MAb Select SURE elution peak
Fig. 4LC in vitro and in vivo structure comparison. a. SEC-HPLC of in vitro refolded LC (black) and in vivo folded LC (blue). b. HIC-HPLC of in vitro refolded LC (black) and in vivo folded LC (blue). c. Gel SDS-PAGE of in vitro refolded LC (black) and in vivo folded LC (blue)
Fig. 5HC in vitro and in vivo structure comparison. Gel SDS-PAGE of in vitro refolded HC (HC A) and in vivo folded HC (HC B)
Isolated antigen HER2 recognition in the ELISA test to assess the mAb folding with chains physical separation
| Molecule | In vivo folded LC | In vivo folded HC | Refolded trastuzumab |
|---|---|---|---|
| Isolated antigen HER2 recognition | ND | ND | 54 ± 6 AU/μg |
Fig. 6mAb refolded from independently produced LC and HC. a SEC-HPLC (native structure). The identity of the peaks was checked by LC-MS (data not shown). b Gel SDS-PAGE (denatured structure)
Fig. 7Graphical conclusions. Antibody folding is a complex process which occurs in vivo and where light chains are coupled to previously assembled heavy chain dimers. In this work, denaturation and chains separation of the Trastuzumab antibody followed by their in vitro refolding through slow dialysis method has shown that heavy chain dimers stabilized by disulphide bridges are necessary in order to reassemble the whole antibody. Successful in vitro assembly of heavy and light chains has been achieved when the chains have been independently produced