Solubility optimization of immunobinders
The invention provides methods of using sequence based analysis and rational strategies to improve the solubility of immunobinders, and in particular of single chain antibodies (scFvs). The invention provides methods of engineering immunobinders, and in particular scFvs, by performing one or more substitutions with hydrophilic residues identified by analysis of a database of selected, stable scFv sequences. The invention also provides immunobinders with optimized solubility prepared according to the engineering methods of the invention.
1. An engineered immunobinder comprising rabbit complementarity determining regions (CDRs) and one of the following solubility enhancing motifs in the heavy chain amino acid positions 12, 103 and 144 (AHo numbering):
(a) Serine (S) at heavy chain amino acid position 12; Serine (S) at heavy chain amino acid position 103; and Threonine (T) at heavy chain amino acid position 144; or
(b) Serine (S) at heavy chain amino acid position 12; Threonine (T) at heavy chain amino acid position 103; and Serine (S) at heavy chain amino acid position 144;
or
(c) Serine (S) at heavy chain amino acid position 12; Threonine (T) at heavy chain amino acid position 103; and Threonine (T) at heavy chain amino acid position 144.
2. The immunobinder of claim 1 , further comprising:
(a) Aspartic acid (D) at light chain amino acid position 31;
(b) Glutamic acid (E) at light chain amino acid position 83;
(c) Arginine (R) at heavy chain amino acid position 43;
(d) Leucine (L) at heavy chain amino acid position 67; and/or
(e) Alanine (A) at heavy chain amino acid position 78.
3. The immunobinder of claim 1 , which is an scFv antibody, a full-length immunoglobulin, a Fab fragment, a Dab or a Nanobody.
4. A composition comprising the immunobinder of claim 1 and a pharmaceutically acceptable carrier.