Literature DB >> 32434156

Roadmap toward the 10 ps time-of-flight PET challenge.

Paul Lecoq1, Christian Morel, John O Prior, Dimitris Visvikis, Stefan Gundacker, Etiennette Auffray, Peter Križan, Rosana Martinez Turtos, Dominique Thers, Edoardo Charbon, Joao Varela, Christophe de La Taille, Angelo Rivetti, Dominique Breton, Jean-François Pratte, Johan Nuyts, Suleman Surti, Stefaan Vandenberghe, Paul Marsden, Katia Parodi, Jose Maria Benlloch, Mathieu Benoit.   

Abstract

Since the seventies, positron emission tomography (PET) has become an invaluable medical molecular imaging modality with an unprecedented sensitivity at the picomolar level, especially for cancer diagnosis and the monitoring of its response to therapy. More recently, its combination with x-ray computed tomography (CT) or magnetic resonance (MR) has added high precision anatomic information in fused PET/CT and PET/MR images, thus compensating for the modest intrinsic spatial resolution of PET. Nevertheless, a number of medical challenges call for further improvements in PET sensitivity. These concern in particular new treatment opportunities in the context personalized (also called precision) medicine, such as the need to dynamically track a small number of cells in cancer immunotherapy or stem cells for tissue repair procedures. A better signal-to-noise ratio (SNR) in the image would allow detecting smaller size tumours together with a better staging of the patients, thus increasing the chances of putting cancer in complete remission. Moreover, there is an increasing demand for reducing the radioactive doses injected to the patients without impairing image quality. There are three ways to improve PET scanner sensitivity: improving detector efficiency, increasing geometrical acceptance of the imaging device and pushing the timing performance of the detectors. Currently, some pre-localization of the electron-positron annihilation along a line-of-response (LOR) given by the detection of a pair of annihilation photons is provided by the detection of the time difference between the two photons, also known as the time-of-flight (TOF) difference of the photons, whose accuracy is given by the coincidence time resolution (CTR). A CTR of about 10 picoseconds FWHM will ultimately allow to obtain a direct 3D volume representation of the activity distribution of a positron emitting radiopharmaceutical, at the millimetre level, thus introducing a quantum leap in PET imaging and quantification and fostering more frequent use of 11C radiopharmaceuticals. The present roadmap article toward the advent of 10 ps TOF-PET addresses the status and current/future challenges along the development of TOF-PET with the objective to reach this mythic 10 ps frontier that will open the door to real-time volume imaging virtually without tomographic inversion. The medical impact and prospects to achieve this technological revolution from the detection and image reconstruction point-of-views, together with a few perspectives beyond the TOF-PET application are discussed.

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Year:  2020        PMID: 32434156      PMCID: PMC7721485          DOI: 10.1088/1361-6560/ab9500

Source DB:  PubMed          Journal:  Phys Med Biol        ISSN: 0031-9155            Impact factor:   3.609


  80 in total

1.  Fast reconstruction of 3D time-of-flight PET data by axial rebinning and transverse mashing.

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4.  Experimental time resolution limits of modern SiPMs and TOF-PET detectors exploring different scintillators and Cherenkov emission.

Authors:  Stefan Gundacker; Rosana Martinez Turtos; Nicolaus Kratochwil; Rosalinde Hendrika Pots; Marco Paganoni; Paul Lecoq; Etiennette Auffray
Journal:  Phys Med Biol       Date:  2020-01-17       Impact factor: 3.609

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6.  High-frequency SiPM readout advances measured coincidence time resolution limits in TOF-PET.

Authors:  Stefan Gundacker; Rosana Martinez Turtos; Etiennette Auffray; Marco Paganoni; Paul Lecoq
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Review 7.  Emerging Opportunities for Digital PET/CT to Advance Locoregional Therapy in Head and Neck Cancer.

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Review 8.  Visual perception studies and observer models in medical imaging.

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  15 in total

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Review 3.  Scanner Design Considerations for Long Axial Field-of-View PET Systems.

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4.  Ultrafast timing enables reconstruction-free positron emission imaging.

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5.  Design rules for time of flight Positron Emission Tomography (ToF-PET) heterostructure radiation detectors.

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6.  A proof-of-concept study of an in-situ partial-ring time-of-flight PET scanner for proton beam verification.

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7.  Quantitative PET in the 2020s: a roadmap.

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8.  Improvement of Spatial Resolution with Iterative PET Reconstruction using UltraFast TOF.

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Journal:  Phys Med Biol       Date:  2021-02-26       Impact factor: 4.174

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