PROTACs as a novel Approach to target Protein Tyrosine Kinases for degradation in human Platelets
Lead Research Organisation:
University of Bristol
Department Name: Physiology and Pharmacology
Abstract
The body has developed a finely tuned mechanism to stop blood loss at sites of vascular injury while preventing vessel blockage by excessive clot formation. It depends on a complicated series of interrelated events involving platelets and plasma coagulation factors. Platelets are small cell fragments that are normally circulating in an inactive state. However, when a blood vessel becomes injured, they rapidly stick to the site of injury and to each other to stop the bleeding. The reason that platelets can respond so efficiently, is that they have proteins on their surface called 'receptors' that can recognize molecules in the damaged blood vessel. When these molecules bind to the platelet receptors, communication signals are stimulated in the cell (=signal transduction) that tell the platelets to clump together and stop the bleeding. However, sometimes signals are stimulated that lead to too much clot formation which can lead to a heart attack or a stroke.
A lot of research has been done to investigate which molecules/proteins are involved in these signal transduction pathways. However, to study these signal transduction pathways experimentally is not straight forward as platelets do not have DNA like other cells, and therefore cannot be genetically modified. Much of the research has therefore been performed on genetically modified mouse models and/or the use of pharmacological drugs. These have the associated complication of species differences (mice are just not the same as people) and the drugs can often not discriminate between different molecules/proteins. Therefore, despite animal models showing that a set of proteins called tyrosine kinases contribute to platelet function, it is not yet clear how they contribute to platelet function in humans.
In this grant application, we therefore propose to develop and optimise a novel experimental technique called PROTAC (PROteolysis TArgeting Chimera) for use in human platelets. PROTACs are small molecules that can be added to cells and hijack their internal system to specifically break down a particular protein. This thus will help us to study the role of that particular protein in human platelet function and the stopping of a bleed. We will focus our efforts on proteins called tyrosine kinases and will use existing PROTACs and further design, develop and optimise novel PROTACs to study the role of tyrosine kinases in human platelets.
A lot of research has been done to investigate which molecules/proteins are involved in these signal transduction pathways. However, to study these signal transduction pathways experimentally is not straight forward as platelets do not have DNA like other cells, and therefore cannot be genetically modified. Much of the research has therefore been performed on genetically modified mouse models and/or the use of pharmacological drugs. These have the associated complication of species differences (mice are just not the same as people) and the drugs can often not discriminate between different molecules/proteins. Therefore, despite animal models showing that a set of proteins called tyrosine kinases contribute to platelet function, it is not yet clear how they contribute to platelet function in humans.
In this grant application, we therefore propose to develop and optimise a novel experimental technique called PROTAC (PROteolysis TArgeting Chimera) for use in human platelets. PROTACs are small molecules that can be added to cells and hijack their internal system to specifically break down a particular protein. This thus will help us to study the role of that particular protein in human platelet function and the stopping of a bleed. We will focus our efforts on proteins called tyrosine kinases and will use existing PROTACs and further design, develop and optimise novel PROTACs to study the role of tyrosine kinases in human platelets.
Technical Summary
One of the complications with studying how platelets maintain normal haemostatic control is that they lack a nucleus thereby prohibiting routine molecular approaches to knockdown a protein. Most of our present knowledge therefore derives from genetic animal models and pharmacological targeting of signaling pathways, each having its own drawbacks associated with species difference and pharmacological non-specificity.
Here we propose the use of rationally designed small molecule degraders called PROTACs (PROteolysis TArgeting Chimeras) to investigate signaling pathways involved in the haemostatic function of platelets. PROTACs are small molecules that can hijack the proteasomal system by bringing the protein target of interest (POI) in the proximity of E3 ligase, leading to protein ubiquitination and proteasomal-mediated degradation. We here demonstrate the feasibility and high specificity of this chemical knockdown strategy using FAK-targeting PROTACs in human platelets.
In this proposal, we will expand on these observations and design, generate and optimize novel PROTACs in order to develop a highly efficient technology to study signaling pathways and their function in human platelets. More specifically, we will focus our attention on protein tyrosine kinases that are abundant in human platelets, including FAK, PYK2 and Src family kinases (SFK). With the PROTAC field rapidly developing and their high selectivity, potency, and efficacy, it is now very timely to develop the PROTAC approach as a novel experimental tool in platelets. This novel approach will facilitate evaluation of biological signalling pathways and their contribution to normal platelet function and haemostasis. We anticipate that the use of PROTACs will be transformative to the platelet research and wider community.
Here we propose the use of rationally designed small molecule degraders called PROTACs (PROteolysis TArgeting Chimeras) to investigate signaling pathways involved in the haemostatic function of platelets. PROTACs are small molecules that can hijack the proteasomal system by bringing the protein target of interest (POI) in the proximity of E3 ligase, leading to protein ubiquitination and proteasomal-mediated degradation. We here demonstrate the feasibility and high specificity of this chemical knockdown strategy using FAK-targeting PROTACs in human platelets.
In this proposal, we will expand on these observations and design, generate and optimize novel PROTACs in order to develop a highly efficient technology to study signaling pathways and their function in human platelets. More specifically, we will focus our attention on protein tyrosine kinases that are abundant in human platelets, including FAK, PYK2 and Src family kinases (SFK). With the PROTAC field rapidly developing and their high selectivity, potency, and efficacy, it is now very timely to develop the PROTAC approach as a novel experimental tool in platelets. This novel approach will facilitate evaluation of biological signalling pathways and their contribution to normal platelet function and haemostasis. We anticipate that the use of PROTACs will be transformative to the platelet research and wider community.
Publications
Di Buduo CA
(2025)
Illustrated capsules from the Advanced Course in Platelet Research.
in Research and practice in thrombosis and haemostasis
Trory J
(2025)
Platelet Physiology II and Laboratory Testing - Volume 2
Trory JS
(2023)
Chemical degradation of BTK/TEC as a novel approach to inhibit platelet function.
in Blood advances
Trory JS
(2025)
PROTACs in platelets: emerging antithrombotic strategies and future perspectives.
in Current opinion in hematology
Tsuji C
(2024)
CryoET reveals actin filaments within platelet microtubules.
in Nature communications
Webb C
(2025)
IL-6 as a Mediator of Platelet Hyper-Responsiveness
in Cells
| Description | 1. Development of new chemical tools to study platelet signalling We developed a potent and selective targeted protein degrader against focal adhesion kinase (FAK), together with dual FAK/PYK2 degrader capable of removing both members of the FAK kinase family. These compounds provide new chemical probes that enable selective elimination of these signalling proteins rather than conventional inhibition of their catalytic activity. 2. Demonstration that targeted protein degradation is feasible in human platelets We demonstrate that PROTAC-based degraders are active in human platelets, which are anucleate cells lacking transcriptional and have only limited translational machinery. This establishes targeted protein degradation as a viable chemical biology strategy for studying signalling pathways in platelets, expanding the experimental toolkit available to the field. 3. New insights into the role of FAK-family kinases in platelet signalling Using human platelet functional assays, we show that degradation of FAK and dual degradation of FAK/PYK2 modulates platelet specific activation pathways. By removing both catalytic and scaffolding functions of these kinases, this approach enables a more definitive interrogation of their contribution to platelet signalling compared with traditional kinase inhibitors. 4. New research tools and questions for the platelet research community The degraders generated in this project represent valuable new research resources for studying platelet signalling and integrin-mediated processes. The work also opens new research questions regarding the relative roles of FAK and PYK2 in human platelet activation and thrombus formation, and the extent to which non-catalytic functions of these kinases contribute to platelet biology. |
| Exploitation Route | The degraders developed in this project provide new chemical tools that can be used by other researchers to investigate the roles of FAK and PYK2 in cell signalling. By enabling selective removal of these proteins, they allow researchers to distinguish catalytic from non-catalytic functions that cannot easily be addressed with conventional inhibitors. The demonstration that targeted protein degradation is feasible in human platelets also establishes a new approach to study signalling pathways in these genetically intractable cells. These tools and methods can therefore be adopted by other groups studying platelet biology, integrin signalling, and adhesion-dependent processes. |
| Sectors | Chemicals Pharmaceuticals and Medical Biotechnology Other |
| Description | This project generated targeted protein degraders against FAK and FAK/PYK2 that provide new chemical tools to study platelet signalling. These tools enable researchers to investigate signalling pathways in human platelets, which are difficult to study using genetic approaches. The work also demonstrates that targeted protein degradation can function in anucleate platelets, expanding the applicability of this technology to new biological systems. The findings are of potential interest to the pharmaceutical sector, where targeted protein degradation is an emerging strategy for modulating disease-relevant signalling pathways, including those involved in thrombosis and cardiovascular disease. |
| First Year Of Impact | 2026 |
| Sector | Chemicals,Pharmaceuticals and Medical Biotechnology |
| Description | Tocris Biotechne-2023 |
| Organisation | Bio-Techne Ltd |
| Department | Tocris |
| Country | United Kingdom |
| Sector | Private |
| PI Contribution | Development of novel PROTACs for use in human platelets |
| Collaborator Contribution | The PROTAC team at Tocris provide their expertise, intellectual input and chemical knowledge for PROTAC optimisation and synthesis |
| Impact | w |
| Start Year | 2023 |
| Description | Advanced Course in Platelet Research-Murcia |
| Form Of Engagement Activity | Participation in an activity, workshop or similar |
| Part Of Official Scheme? | No |
| Geographic Reach | International |
| Primary Audience | Postgraduate students |
| Results and Impact | Workshop teaching newcomers in the field the ins and outs of platelet research |
| Year(s) Of Engagement Activity | 2025 |
| URL | https://seth.es/advanced-course-platelet-research/ |
| Description | Bristol Heart Festival |
| Form Of Engagement Activity | Participation in an activity, workshop or similar |
| Part Of Official Scheme? | No |
| Geographic Reach | Local |
| Primary Audience | Schools |
| Results and Impact | Co-organiser of the first Heart Festival in the UK: Bristol Heart Festival. Participation in providing workshops for year 9 school children and the general public. |
| Year(s) Of Engagement Activity | 2025 |
| URL | https://heart-institute.bristol.ac.uk/bristol-heart-festival/ |
| Description | British Society of Thrombosis and Haemostasis at the University of Cardiff - 23rd January 2026, CW and HW |
| Form Of Engagement Activity | A talk or presentation |
| Part Of Official Scheme? | No |
| Geographic Reach | International |
| Primary Audience | Postgraduate students |
| Results and Impact | further interest in collaborations |
| Year(s) Of Engagement Activity | 2026 |
| Description | Pint of Science-2025 |
| Form Of Engagement Activity | Participation in an activity, workshop or similar |
| Part Of Official Scheme? | No |
| Geographic Reach | Regional |
| Primary Audience | Public/other audiences |
| Results and Impact | Science festival |
| Year(s) Of Engagement Activity | 2026 |