68Ga-bisphosphonates for the imaging of extraosseous calcification by positron emission tomography

被引:3
作者
Keeling, George P. [1 ]
Baark, Friedrich [1 ]
Katsamenis, Orestis L. [2 ]
Xue, Jing [3 ]
Blower, Philip J. [1 ]
Bertazzo, Sergio [3 ]
T. M. de Rosales, Rafael [1 ]
机构
[1] Kings Coll London, St Thomas Hosp, Sch Biomed Engn & Imaging Sci, Dept Imaging Chem & Biol, London SE1 7EH, England
[2] Univ Southampton, Fac Engn & Phys Sci, VIS X Ray Imaging Ctr, Highfield Campus, Southampton SO17 1BJ, England
[3] UCL, Dept Med Phys & Biomed Engn, Malet Pl Engn Bldg, London WC1E 6BT, England
基金
英国工程与自然科学研究理事会; 英国惠康基金;
关键词
BONE; BISPHOSPHONATE; WHITLOCKITE; MAGNESIUM; MICROCALCIFICATIONS; MECHANISMS; METASTASES; COMPLEXES; RATIO;
D O I
10.1038/s41598-023-41149-7
中图分类号
O [数理科学和化学]; P [天文学、地球科学]; Q [生物科学]; N [自然科学总论];
学科分类号
07 ; 0710 ; 09 ;
摘要
Radiolabelled bisphosphonates (BPs) and [F-18]NaF (F-18-fluoride) are the two types of radiotracers available to image calcium mineral (e.g. bone), yet only [F-18]NaF has been widely explored for the non-invasive molecular imaging of extraosseous calcification (EC) using positron emission tomography (PET) imaging. These two radiotracers bind calcium mineral deposits via different mechanisms, with BPs chelating to calcium ions and thus being non-selective, and [F-18] NaF being selective for hydroxyapatite (HAp) which is the main component of bone mineral. Considering that the composition of EC has been reported to include a diverse range of non-HAp calcium minerals, we hypothesised that BPs may be more sensitive for imaging EC due to their ability to bind to both HAp and non-HAp deposits. We report a comparison between the Ga-68-labelled BP tracer [Ga-68]Ga-THP-Pam and [F-18]NaF for PET imaging in a rat model of EC that develops macro- and microcalcifications in several organs. Macrocalcifications were identified using preclinical computed tomography (CT) and microcalcifications were identified using mu CT-based 3D X-ray histology (XRH) on isolated organs ex vivo. The morphological and mineral analysis of individual calcified deposits was performed using scanning electron microscopy (SEM) and energy-dispersive X-ray spectroscopy (EDX). PET imaging and ex vivo analysis results demonstrated that while both radiotracers behave similarly for bone imaging, the BP-based radiotracer [Ga-68]Ga-THP-Pam was able to detect EC more sensitively in several organs in which the mineral composition departs from that of HAp. Our results strongly suggest that BP-based PET radiotracers such as [Ga-68]Ga-THP-Pam may have a particular advantage for the sensitive imaging and early detection of EC by being able to detect a wider array of relevant calcium minerals in vivo than [F-18]NaF, and should be evaluated clinically for this purpose.
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页数:13
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共 51 条
  • [1] Carotid Artery Calcification: What We Know So Far
    Ahmed, Madeeha
    McPherson, Regina
    Abruzzo, Alexandra
    Thomas, Sneha E.
    Gorantla, Vasavi Rakesh
    [J]. CUREUS JOURNAL OF MEDICAL SCIENCE, 2021, 13 (10)
  • [2] Diagnostic PET Imaging of Mammary Microcalcifications Using 64Cu-DOTA-Alendronate in a Rat Model of Breast Cancer
    Ahrens, Bradley J.
    Li, Lin
    Ciminera, Alexandra K.
    Chea, Junie
    Poku, Erasmus
    Bading, James R.
    Weist, Michael R.
    Miller, Marcia M.
    Colcher, David M.
    Shively, John E.
    [J]. JOURNAL OF NUCLEAR MEDICINE, 2017, 58 (09) : 1373 - 1379
  • [3] Role of pyrophosphate in vascular calcification in chronic kidney disease
    Azpiazu, Daniel
    Gonzalo, Sergio
    Gonzalez-Parra, Emilio
    Egido, Jesus
    Villa-Bellosta, Ricardo
    [J]. NEFROLOGIA, 2018, 38 (03): : 250 - 257
  • [4] Bertazzo S, 2013, NAT MATER, V12, P576, DOI [10.1038/NMAT3627, 10.1038/nmat3627]
  • [5] Technetium-99m and rhenium-188 complexes with one and two pendant bisphosphonate groups for imaging arterial calcification
    Bordoloi, Jayanta Kumar
    Berry, David
    Khan, Irfan Ullah
    Sunassee, Kavitha
    de Rosales, Rafael Torres Martin
    Shanahan, Catherine
    Blower, Philip J.
    [J]. DALTON TRANSACTIONS, 2015, 44 (11) : 4963 - 4975
  • [6] Normal Bone Anatomy and Physiology
    Clarke, Bart
    [J]. CLINICAL JOURNAL OF THE AMERICAN SOCIETY OF NEPHROLOGY, 2008, 3 : S131 - S139
  • [7] Targeted delivery to bone and mineral deposits using bisphosphonate ligands
    Cole, Lisa E.
    Vargo-Gogola, Tracy
    Roeder, Ryan K.
    [J]. ADVANCED DRUG DELIVERY REVIEWS, 2016, 99 : 12 - 27
  • [8] Imaging with radiolabelled bisphosphonates
    Cook, Gary J. R.
    [J]. BONE, 2020, 137
  • [9] 18F-Fluoride Signal Amplification Identifies Microcalcifications Associated With Atherosclerotic Plaque Instability in Positron Emission Tomography/Computed Tomography Images
    Creager, Michael D.
    Hohl, Tobias
    Hutcheson, Joshua D.
    Moss, Alastair J.
    Schlotter, Florian
    Blaser, Mark C.
    Park, Mi-Ae
    Lee, Lang Ho
    Singh, Sasha A.
    Alcaide-Corral, Carlos J.
    Tavares, Adriana A. S.
    Newby, David E.
    Kijewski, Marie F.
    Aikawa, Masanori
    Di Carli, Marcelo
    Dweck, Marc R.
    Aikawa, Elena
    [J]. CIRCULATION-CARDIOVASCULAR IMAGING, 2019, 12 (01)
  • [10] Estimation of prevalence of transthyretin (ATTR) cardiac amyloidosis in an Australian subpopulation using bone scans with echocardiography and clinical correlation
    Cuscaden, Claire
    Ramsay, Stuart C.
    Prasad, Sandhir
    Goodwin, Bruce
    Smith, Jye
    [J]. JOURNAL OF NUCLEAR CARDIOLOGY, 2021, 28 (06) : 2845 - 2856