Human IgG1 (HexaBody: E345K/E430G)

$680.00

Plasmid Name: pHC-IgG1-HexaBody(E345K/E430G)

Backbone: Human IgG1 heavy chain expression vector

Mutation Set: E345K / E430G

Complement Effect Level: ★★★★★ (Canonical CDC-Boosting Fc)

Next-generation CH3 double mutation engineered to drive antigen-dependent antibody hexamerization on target cell membranes. Significantly boosts C1q recruitment and complement-dependent cytotoxicity (CDC) via high-avidity MAC assembly while maintaining native solution-state stability and baseline FcγR/FcRn interactions.

Plasmid Name
pHC-IgG1-HexaBody(E345K/E430G)
Mutation Set
E345K / E430G
Selection Marker
Ampicillin
Promoter
CMV

Fc Engineering Overview

The Human IgG1 (HexaBody: E345K/E430G) Fc variant introduces a next-generation complement-enhancing double mutation in the CH3 domain designed to induce antigen-dependent Fc-Fc hexamerization on target cell membranes. This structural arrangement drives ultra-potent C1q recruitment and complement-dependent cytotoxicity (CDC) through avidity-driven membrane attack complex (MAC) assembly while preserving baseline FcγR binding and FcRn-mediated stability.

Functional Profile

Property Effect
FcγRI/II/III binding Normal / WT Baseline
ADCC & ADCP Normal / WT Baseline
CDC Ultra-Enhanced ↑↑↑↑ (Avidity-driven MAC assembly)
FcRn binding Normal / WT Baseline
Serum half-life Normal / WT Baseline
Effector potency Ultra-Potent CDC Enhancement (Selective C1q recruitment boost)

Mechanism of Action

The HexaBody Fc variant introduces two structural substitutions—Glu345 to Lys and Glu430 to Gly—within the CH3-CH3 intermolecular contact interface:

  • E345K Substitution: Introduces a positive charge that promotes favorable electrostatic interactions between adjacent Fc monomers.
  • E430G Substitution: Increases local main-chain flexibility, lowering the thermodynamic barrier for self-assembly.

Upon target antigen binding, these modifications drive the cooperative clustering of six antibody monomers into ordered hexameric rings at the cell surface. This arrangement creates a high-avidity docking platform that perfectly matches the hexameric head structure of C1q, triggering massive complement activation without requiring fluid-phase aggregation.

Phenotypic Effects

  • Ultra-potent activation of complement-dependent cytotoxicity (CDC).
  • Massive enhancement of C1q recruitment via high-avidity hexameric interface geometry.
  • Preserves baseline FcγR binding and cellular effector functions (ADCC/ADCP).
  • Maintains normal FcRn-mediated recycling and systemic pharmacokinetics.
  • Excellent biophysical stability and monomeric profile in solution prior to antigen binding.

Applications

  • Therapeutic antibodies targeting low-to-moderate density cell-surface tumor antigens.
  • Enhancement of CDC-depleting mechanisms for oncology targets (e.g., CD20, CD19, CD38).
  • Infectious disease therapeutics requiring rapid, complement-mediated pathogen or host-cell destruction.
  • Benchmark scaffold for studying cell-surface Fc-Fc clustering and complement cascade kinetics.

Plasmid Map & Feature Annotation

Insert Structure: VH – CH1 – hinge – CH2(wild-type) – CH3(E345K/E430G)

  • VH: Variable heavy domain
  • CH1: Constant heavy 1
  • Hinge: Native IgG1 hinge
  • CH2 (wild-type): Native IgG1 CH2 domain (retains N297 glycosylation)
  • CH3 (E345K/E430G): Hexamerization-inducing double mutation

Product Note: The canonical HexaBody module (E345K/E430G) represents a paradigm shift in Fc engineering. Rather than altering direct contact residues for C1q within CH2, HexaBody enhances C1q avidity by organizing monomeric IgGs into ordered cell-surface arrays upon antigen engagement. This preserves native solution-state monomeric stability while achieving CDC potencies orders of magnitude above wild-type IgG1.

Fusion BioLabs Complement Modulated Family Comparison Matrix

Variant Mechanism Complement Effect Primary Application & Notes
human IgG1 (WT)
Wild-Type
Native C1q binding ★★☆☆☆ Baseline Control. Standard physiological C1q binding and CDC baseline for comparative assays.
human IgG1 (HexaBody-Extended)
E345K / E430G / E431K
On-cell hexamerization ★★★★★+ Hyper-CDC Enhancer. Triple mutation maximizing Fc-Fc intermolecular interactions; yields ultra-potent C1q avidity against ultra-low density antigen targets.
human IgG1 (HexaBody)
E345K / E430G
On-cell hexamerization ★★★★★ This Product. Canonical CDC-Boosting Fc. Enhances cell-surface hexamer assembly upon antigen binding to drastically boost C1q recruitment and membrane attack complex (MAC) formation.
human IgG1 (SEHF)
S267E / H268F
C1q binding loop enhancement ★★★★☆ High-Potency CDC Enhancer. Optimizes local electrostatic and structural interactions with C1q to boost complement lysis without requiring hexamerization.
human IgG1 (WS)
K326W / E333S
C1q binding loop enhancement ★★★☆☆ Strong CDC Enhancer. Synergistic double mutation in CH2 that significantly increases C1q binding affinity and complement killing.
human IgG1 (K322A)
K322A
C1q contact site ablation ★☆☆☆☆ Selective Human IgG1 CDC-Null. Abolishes C1q binding and CDC while maintaining native FcγR engagement (ADCC+/ADCP+).
human IgG2 (K322A)
K322A
C1q contact site ablation ★☆☆☆☆ Completely Silent Human IgG2 Control. Eliminates residual IgG2 C1q binding to yield a fully inert neutralizer (ADCCnull/ADCPnull/CDCnull).
mouse IgG2a (CompNull)
L235E + E318A / K320A / K322A
Complement binding triad ablation ★☆☆☆☆ Murine CDC-Null Control. Completely abolishes complement activation in murine models while preserving mouse FcγR engagement for syngeneic in vivo studies.

Storage & Handling

  • Store plasmid at −20°C.
  • Avoid repeated freeze–thaw cycles.
  • Use sterile technique when handling.
  • Suitable for transient or stable mammalian expression.

References

  1. de Jong RN, Beurskens FJ, Verploegen S, Strumane K, van Kampen MD, Voorhorst M, Horstman W, Engelberts PJ, Oostindie SC, Wang G, Heck AJ, Schuurman J, Parren PW. A Novel Platform for the Potentiation of Therapeutic Antibodies Based on Antigen-Dependent Formation of IgG Hexamers at the Cell Surface. PLoS Biol. 2016 Jan 6;14(1):e1002344.