Genetically encoded sensors for imaging proteins and their complexes
Isolated truncated and mutated sensor proteins derived from flavoproteins that are 12-20 KDa or less, genetically encoded for detection and imaging of protein complexes having long fluorescent lifetimes that can be 4.0 ns or greater.
1. A genetically encoded fluorescence protein fragment having a sequence that has a mass of less than 20 kDa, wherein the fragment has a sequence that is at least 95% identical to the sequence of SEQ ID NOS: 8 or 9 corresponding to the sequence of the genetically encoded fluorescence protein fragment, and having a fluorescent anisotropic lifetime that is >4.0 ns, wherein the genetically encoded fluorescence protein fragment further comprises an amino acid based targeting molecule, wherein the genetically encoded fluorescence protein fragment and the amino acid based targeting molecule are linked to each other by a linker, and wherein the genetically encoded fluorescence protein fragment is configured for fluorescent anisotropy-based measurement in a bound complex with a target protein.
2. An isolated fluorescent fragment of lumazine binding protein (LUMP), wherein the fragment is less than 20 kDa and is a fragment of a sequence having at least 95% identity to SEQ ID NO: 8 or 9, wherein the fragment has a fluorescent anisotropic lifetime that is greater than 4.0 ns, wherein the isolated fluorescent fragment further comprises an amino acid based targeting molecule, wherein the isolated fluorescent fragment and the amino acid based targeting molecule are linked to each other by a linker, and wherein the isolated fluorescent fragment is configured for fluorescent anisotropy-based measurement in a bound complex with a target protein.
3. The isolated fluorescent variant of LUMP of claim 2 , wherein the lifetime is at least 10 ns.
4. The isolated fluorescent variant of LUMP of claim 2 , wherein the lifetime is at least 14 ns.
5. A fluorescent anisotropy based sensor, the sensor comprising: an amino acid based targeting molecule; and
a fluorescent molecule that is covalently linked to the amino acid based targeting molecule, wherein the fluorescent molecule is a truncated variant, wherein the truncated variant is no greater in size than 10 KDa, wherein the fragment is a fragment of a sequence that has at least 95% identity to SEQ ID NO: 8 or 9, and wherein the truncated variant has an anisotropic lifetime of greater than 4 ns,
wherein the genetically encoded fluorescence molecule and the amino acid based targeting molecule are linked to each other by a linker, and
wherein the fluorescent anisotropy based sensor is configured for fluorescent anisotropy-based measurement in a bound complex with a target protein.
6. The fluorescent anisotropy based sensor of claim 5 , wherein the amino acid based targeting molecule comprises a targeting peptide or protein domain that represent a human proteome.
7. The fluorescent anisotropy based sensor of claim 5 , wherein the amino acid based targeting molecule comprises a g-protein binding domain.
8. The genetically encoded fluorescence protein fragment of claim 1 wherein the fragment wherein the fragment is a fragment of a sequence that has 100% identity to SEQ ID NO: 8 or 9.
9. The isolated fluorescent fragment of LUMP of claim 2 , wherein the fragment is a fragment of a sequence that has 100% identity to SEQ ID NO: 8 or 9.
10. The fluorescent anisotropy based sensor of claim 5 , wherein the fragment is a fragment of a sequence that has 100% identity to SEQ ID NO: 8 or 9.
11. The fluorescent anisotropy based sensor of claim 5 , wherein the linker is a flexible linker.
12. The fluorescent anisotropy based sensor of claim 5 , wherein the linker is a cleavable linker.
13. The fluorescent anisotropy based sensor of claim 1 , wherein the fragment is SEQ ID NO: 8.
14. The fluorescent anisotropy based sensor of claim 2 , wherein the fragment is SEQ ID NO: 8.
15. The fluorescent anisotropy based sensor of claim 5 , wherein the fragment is SEQ ID NO: 8.