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Sasson, Y.

Publications and source records attributed to Sasson, Y..

2 recordsLinked to original sources

Dual-Specific Antibody Design Using Artificial Intelligence

Multibodies, or "two-in-one" Immunoglobulin G (IgG) antibodies, are standard symmetrical IgG molecules engineered to competitively bind more than one antigen within a single variable fragment (Fv) binding surface. This format merges the functional advantages of bispecifics, such as multi-target binding and dynamic adaptation to target concentrations, with the superior manufacturing, developability, pharmacokinetics, and avidity of monospecific IgGs. Moreover, the co-accommodation of multiple paratopes on a single set of 6 CDRs introduces new functional possibilities that can improve efficacy and safety. Multibodies can, therefore, be thought of as force multipliers: for any format of antibodies, or fragments thereof, multibodies can bind double the number of epitopes compared to standard antibodies. While these advantages were recognized more than 15 years ago, the systematic design of multibodies has been intractable due to the challenge of optimizing two binding specificities into one Fv region, without having one of them compromising the other and without inducing poly-reactivity. To overcome this engineering barrier, we have developed an artificial intelligence (AI)-assisted computational platform that enables the design of functional multibodies against virtually any pair of targets. We applied the platform to design nine multibodies combining 15 different unrelated targets. We obtained therapeutic-grade multibodies that bind each desired pair of targets. We demonstrate that the generated multibodies possess excellent developability, high affinity, and stringent specificity, comparing favorably to clinical monospecific benchmarks. Critically, we show that these multibodies exhibit superior functional activity across a diverse range of mechanisms of action (MOAs), including internalization, T-cell engagement, and immune system modulation. This capability to reliably engineer versatile multibodies opens a new domain in antibody therapeutics, enabling complex multipharmacology and novel functions within a natural, cost-effective, and highly developable format. Two of these multibodies are currently in IND enabling studies, with first in human studies expected in 2026. The timeline from idea to a fully optimized, developable, lead candidate, ready for IND enabling studies, is 9 months.

bioengineering↗

Mapping molecular determinants of Cav2.2 inhibition by RGK proteins and homologs in Xenopus oocytes

The CaV1 and CaV2 families of voltage-dependent calcium channels play a crucial role in neurotransmitter release, excitation-contraction and many other cellular processes. Comprised of the membrane pore-forming 1, intracellular {beta} and extracellular 2{delta} subunits, these channels have been targets for pharmacological intervention for decades. Physiological functions of CaV channels are attenuated by either constitutively or transiently bounds proteins in the cellular environment. The RGK (Rad, Gem, Rem, and Rem2) G-protein family potently inhibits CaV1 and CaV2 function in heterologous expression systems. RGK proteins bind to CaV{beta} and inhibit channel localization and activity by forming a ternary complex with CaV1. Here, we evaluated the influence of RGK proteins on CaV2.2 channels heterologously expressed in Xenopus oocytes. Both Gem and Rad showed no nucleotide dependency on its inhibitory function on CaV2.2. The G-domain and C-terminus could inhibit the CaV2.2 channel independently when co-expressed with channel subunits. Our results demonstrated that structural determinants in Gem, crucial for channel inhibition, lie within the 222-296 amino acid region containing both the partial G-domain and C-terminus as determined from chimeric CaV{beta}-Gem constructs. We expanded our mapping efforts and prepared various chimeras of Drosophila melanogaster (Dm) RGK sequences fused to CaV{beta} and showed that 22 residues in RGK2t and RGK3L C-terminal imparted complete CaV2.2 inhibition. Point mutations in the DmRGK C-terminus, conserved in mammalian RGK proteins, abrogated the CaV2.2 inhibition to a significant extent, pointing to a hot region in the extreme C-terminus for inhibition of CaV channels. Since RGK homologs are now recognized as physiological modulators in {beta}-adrenergic regulation of CaV channels, the relevance of this curious G-protein family deserves close examination.

physiology↗