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Macrophage‐like U937 cells recognize collagen fibrils with strain‐induced discrete plasticity damage. SP Veres, EP Brennan‐Pierce, JM Lee Journal of Biomedical Materials Research Part A (2014). Mechanically overloading collagen fibrils uncoils collagen molecules, placing them in a stable, denatured state. SP Veres, JM Harrison, JM Lee. Matrix Biology (2014) 33:54-59. Cross‐link stabilization does not affect the response of collagen molecules, fibrils, or tendons to tensile overload. SP Veres, JM Harrison, JM Lee. Journal of Orthopaedic Research (2013) 31(12), 1907-1913. Accurate Nano-Mechanical Mapping of Collagen I Fibrils. S Baldwin, S Veres, M Lee, L Kreplak. Microscopy and Microanalysis (2013) 19(S2), 34-35. Repeated subrupture overload causes progression of nanoscaled discrete plasticity damage in tendon collagen fibrils. SP Veres, JM Harrison, JM Lee. Journal of Orthopaedic Research (2013) 31(5), 731-737. Designed to Fail: A Novel Mode of Collagen Fibril Disruption and Its Relevance to Tissue Toughness. SP Veres, JM Lee. Biophysical Journal (2012) 102(12), 2876-2884.

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