256
Views
0
CrossRef citations to date
0
Altmetric
Research Article

Safe and Efficient Magnetic Resonance Imaging of Acute Myocardial Infarction with Gadolinium-Doped Carbon Dots

, , , , &
Pages 2385-2398 | Received 15 Apr 2020, Accepted 20 Aug 2020, Published online: 11 Sep 2020

References

  • Iglesias JF , MullerO, HegDet al. Biodegradable polymer sirolimus-eluting stents versus durable polymer everolimus-eluting stents in patients with ST-segment elevation myocardial infarction (BIOSTEMI): a single-blind, prospective, randomised superiority trial. Lancet394(10205), 1243–1253 (2019).
  • Curran J , BurkhoffD, KlonerRA. Beyond reperfusion: acute ventricular unloading and cardioprotection during myocardial infarction. J. Cardiovasc. Trans. Res.12(2), 95–106 (2019).
  • Larson DM , MckavanaghP, HenryTD, CantorWJ. Reperfusion options for ST elevation myocardial infarction patients with expected delays to percutaneous coronary intervention. Interv. Cardiol. Clin.5(4), 439–450 (2016).
  • Kamatham S , WatersCM, SchwingshacklA, MancarellaS. TREK-1 protects the heart against ischemia-reperfusion-induced injury and from adverse remodeling after myocardial infarction. Pflugers Arch.471(10), 1263–1272 (2019).
  • Lavin B , ProttiA, LorrioSet al. MRI with gadofosveset: a potential marker for permeability in myocardial infarction. Atherosclerosis275, 400–408 (2018).
  • Cereijido M , Gonzalez-MariscalL, ContrerasRG. Epithelial tight junctions. Am. Rev. Respir Dis.138(6 Pt 2), S17–S21 (1988).
  • Lundy DJ , ChenKH, TohEK, HsiehPC. Distribution of systemically administered nanoparticles reveals a size-dependent effect immediately following cardiac ischaemia-reperfusion injury. Sci. Rep.6, 25613 (2016).
  • Patel H , MazurW, WilliamsKA, KalraDKSr. Myocardial viability-state of the art: is it still relevant and how to best assess it with imaging?Trends Cardiovasc. Med.28(1), 24–37 (2018).
  • Merinopoulos I , GunawardenaT, EccleshallSC, VassiliouVS. Cardiovascular magnetic resonance: stressing the future. World J. Cardiol.11(8), 195–199 (2019).
  • Sanaani A , FuiszA. Cardiac magnetic resonance for diagnosis and risk stratification. Cardiol. Clin.37(1), 27–33 (2019).
  • Wen LY , YangZG, LiZLet al. Accurate identification of myocardial viability after myocardial infarction with novel manganese chelate-based MR imaging. NMR Biomed.32(11), e4158 (2019).
  • Malikova H , HolestaM. Gadolinium contrast agents – are they really safe?J. Vasc. Access18(Suppl. 2), 1–7 (2017).
  • Weng TI , ChenHJ, LuCWet al. Exposure of macrophages to low-dose gadolinium-based contrast medium: impact on oxidative stress and cytokines production. Contrast Media Mol. Imaging2018, 535769 (2018).
  • Liu Y , ZhangN. Gadolinium loaded nanoparticles in theranostic magnetic resonance imaging. Biomaterials33(21), 5363–5375 (2012).
  • Zhang H , LiYH, ChenY, WangMM, WangXS, YinXB. Fluorescence and magnetic resonance dual-modality imaging-guided photothermal and photodynamic dual-therapy with magnetic porphyrin-metal organic framework nanocomposites. Sci. Rep.7, 44153 (2017).
  • Yao YY , GeddaG, GirmaWM, YenCL, LingYC, ChangJY. Magnetofluorescent carbon dots derived from crab shell for targeted dual-modality bioimaging and drug delivery. ACS Appl. Mater. Interfaces9(16), 13887–13899 (2017).
  • Feng W , HanC, LiF. Upconversion-nanophosphor-based functional nanocomposites. Adv. Mater.25(37), 5287–5303 (2013).
  • Xing H , ZhangS, BuWet al. Ultrasmall NaGdF4 nanodots for efficient MR angiography and atherosclerotic plaque imaging. Adv. Mater.26(23), 3867–3872 (2014).
  • Li C , XuL, LiuZet al. Current progress in the controlled synthesis and biomedical applications of ultrasmall (<10 nm) NaREF4 nanoparticles. Dalton Trans.47(26), 8538–8556 (2018).
  • Xu Y , JiaXH, YinXB, HeXW, ZhangYK. Carbon quantum dot stabilized gadolinium nanoprobe prepared via a one-pot hydrothermal approach for magnetic resonance and fluorescence dual-modality bioimaging. Anal. Chem.86(24), 12122–12129 (2014).
  • Gong N , WangH, LiSet al. Microwave-assisted polyol synthesis of gadolinium-doped green luminescent carbon dots as a bimodal nanoprobe. Langmuir30(36), 10933–10939 (2014).
  • Zheng Y , ZhangH, HuY, BaiL, XueJ. MnO nanoparticles with potential application in magnetic resonance imaging and drug delivery for myocardial infarction. Int. J. Nanomed.13, 6177–6188 (2018).
  • Nahrendorf M , SosnovikD, ChenJWet al. Activatable magnetic resonance imaging agent reports myeloperoxidase activity in healing infarcts and noninvasively detects the antiinflammatory effects of atorvastatin on ischemia-reperfusion injury. Circulation117(9), 1153–1160 (2008).
  • Keliher EJ , YeYX, WojtkiewiczGRet al. Polyglucose nanoparticles with renal elimination and macrophage avidity facilitate PET imaging in ischaemic heart disease. Nat. Commun.8, 14064 (2017).
  • Chen H , QiuY, DingDet al. Gadolinium-encapsulated graphene carbon nanotheranostics for imaging-guided photodynamic therapy. Adv. Mater.23, e1802748 (2018).
  • Lohofer F , HoffmannL, BuchholzRet al. Molecular imaging of myocardial infarction with Gadofluorine P – a combined magnetic resonance and mass spectrometry imaging approach. Heliyon4(4), e00606 (2018).
  • Liu K , YanX, XuYJet al. Sequential growth of CaF2:Yb,Er@CaF2:Gd nanoparticles for efficient magnetic resonance angiography and tumor diagnosis. Biomater. Sci.5(12), 2403–2415 (2017).
  • Du F , ZhangL, ZhangLet al. Engineered gadolinium-doped carbon dots for magnetic resonance imaging-guided radiotherapy of tumors. Biomaterials121, 109–120 (2017).
  • Chen H , WangGD, TangWet al. Gd-encapsulated carbonaceous dots with efficient renal clearance for magnetic resonance imaging. Adv. Mater.26(39), 6761–6766 (2014).
  • Frangville C , GalloisM, LiYet al. Hyperbranched polymer mediated size-controlled synthesis of gadolinium phosphate nanoparticles: colloidal properties and particle size-dependence on MRI relaxivity. Nanoscale8(7), 4252–4259 (2016).
  • Hwang R , MirshafieeV, ZhuY, XiaT. Current approaches for safer design of engineered nanomaterials. Ecotoxicol. Environ. Saf.166, 294–300 (2018).
  • Cicha I , ChauvierreC, TexierIet al. From design to the clinic: practical guidelines for translating cardiovascular nanomedicine. Cardiovasc. Res.114(13), 1714–1727 (2018).
  • Liu K , DongL, XuYet al. Stable gadolinium based nanoscale lyophilized injection for enhanced MR angiography with efficient renal clearance. Biomaterials158, 74–85 (2018).
  • Zhang H , WangT, ZhengYet al. Comparative toxicity and contrast enhancing assessments of Gd2O3@BSA and MnO2@BSA nanoparticles for MR imaging of brain glioma. Biochem. Biophys. Res. Commun.499(3), 488–492 (2018).
  • England CG , ImHJ, FengLet al. Re-assessing the enhanced permeability and retention effect in peripheral arterial disease using radiolabeled long circulating nanoparticles. Biomaterials100, 101–109 (2016).
  • Peters NS . Myocardial gap junction organization in ischemia and infarction. Microsc. Res. Tech.31(5), 375–386 (1995).

Reprints and Corporate Permissions

Please note: Selecting permissions does not provide access to the full text of the article, please see our help page How do I view content?

To request a reprint or corporate permissions for this article, please click on the relevant link below:

Academic Permissions

Please note: Selecting permissions does not provide access to the full text of the article, please see our help page How do I view content?

Obtain permissions instantly via Rightslink by clicking on the button below:

If you are unable to obtain permissions via Rightslink, please complete and submit this Permissions form. For more information, please visit our Permissions help page.