4.8 Article

Modular transient nanoclustering of activated β2-adrenergic receptors revealed by single-molecule tracking of conformation-specific nanobodies

出版社

NATL ACAD SCIENCES
DOI: 10.1073/pnas.2007443117

关键词

single-particle-tracking superresolution microscopy; nanobodies; beta 2-adrenoreceptor

资金

  1. Australian Research Council (ARC) [DP170100125]
  2. ARC Linkage Infrastructure Equipment and Facilities Grant [LE130100078]
  3. National Health and Medical Research Council (NHMRC) [1155794]
  4. NHMRC [1129367, 1037320, 1058565, 1165850]
  5. NHMRC Senior Research Fellowship [1111042]
  6. NHMRC-ARC Dementia Research Development Fellowship [1108489]
  7. Academia of Finland Postdoctoral Research Fellowship [298124]
  8. ARC [DE190100565]
  9. University of Queensland Postdoctoral Research Fellowship
  10. ARC Centre of Excellence in Convergent Bio-Nano Science and Technology
  11. NHMRC Investigator Grant [1174145]
  12. Rebecca L. Cooper Medical Research Project [PG2019405]
  13. National Health and Medical Research Council of Australia [1129367, 1058565, 1108489, 1111042, 1155794, 1174145, 1165850] Funding Source: NHMRC
  14. Australian Research Council [DE190100565] Funding Source: Australian Research Council
  15. Academy of Finland (AKA) [298124, 298124] Funding Source: Academy of Finland (AKA)

向作者/读者索取更多资源

None of the current superresolution microscopy techniques can reliably image the changes in endogenous protein nanoclustering dynamics associated with specific conformations in live cells. Single domain nanobodies have been invaluable tools to isolate defined conformational states of proteins, and we reasoned that expressing these nanobodies coupled to single-molecule imaging-amenable tags could allow superresolution analysis of endogenous proteins in discrete conformational states. Here, we used anti-GFP nanobodies tagged with photoconvertible mEos expressed as intrabodies, as a proof-of-concept to perform single-particle tracking on a range of GFP proteins expressed in live cells, neurons, and small organisms. We next expressed highly specialized nanobodies that target conformation specific endogenous beta(2)-adrenoreceptor (beta(2)-AR) in neurosecretory cells, unveiling real-time mobility behaviors of activated and inactivated endogenous conformers during agonist treatment in living cells. We showed that activated beta(2)-AR (Nb80) is highly immobile and organized in nanoclusters. The Gas-GPCR complex detected with Nb37 displayed higher mobility with surprisingly similar nanoclustering dynamics to that of Nb80. Activated conformers are highly sensitive to dynamin inhibition, suggesting selective targeting for endocytosis. Inactivated beta(2)-AR (Nb60) molecules are also largely immobile but relatively less sensitive to endocytic blockade. Expression of single-domain nanobodies therefore provides a unique opportunity to capture highly transient changes in the dynamic nanoscale organization of endogenous proteins.

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