Skip to main content
Top
Published in: International Journal of Legal Medicine 1/2024

Open Access 06-09-2022 | Original Article

Microcracking pattern in fractured bones: new approach for distinguishing between peri- and postmortem fractures

Authors: Michelle Winter-Buchwalder, Nathalie Schwab, Ignasi Galtés, Marisa Ortega-Sánchez, Sarah Scheirs, Xavier Jordana

Published in: International Journal of Legal Medicine | Issue 1/2024

Login to get access

Abstract

Timing bone fractures is one of the main tasks of a forensic anthropologist, but still an uncertain diagnostic. In the literature, there are many macroscopic methods to distinguish perimortem from postmortem fractures, based on the distinct structural and mechanical properties of fresh and dry bones. However, this differentiation is still challenging, in particular when the bones are fragmented or still exhibit fresh properties. Although histologic analysis is often used as a complementary diagnostic tool in forensic pathology, its application in the evaluation of bone fractures is uncommon. The aim of this study was to investigate whether fractures of fresh bones reveal a distinct microcracking pattern compared to fractures of dry bones, in order to optimise the fracture timing. To this purpose, we histologically analysed perimortem and postmortem fractures in human humeri. The fresh bones were retrieved from traumatic autopsy cases, and the dry bones from donors which were experimentally fractured. Our results showed that the highest density and length of microcracks (MCKs) were found in the interstitial area of dry fractured bones, which may be considered a marker of postmortem damage. In fresh fractured bones, we generally observed a lower density of MCKs, but a higher proportion of osteonal MCKs, which may be considered a marker of perimortem trauma. In summary, the results of our exploratory study suggest that changes in intrinsic bone factors (mineral/organic components) result in a different microcracking pattern that can be used in fracture timing.
Literature
1.
go back to reference Galloway A, Zephro L, Wedel VL (2014) Diagnostic criteria for the determination of timing and fracture mechanism. In: Wedel VL, Galloway A (eds) Broken Bones: Anthropological Analysis of Blunt Force Trauma. Charles C Thomas, Springfield, pp 47–58 Galloway A, Zephro L, Wedel VL (2014) Diagnostic criteria for the determination of timing and fracture mechanism. In: Wedel VL, Galloway A (eds) Broken Bones: Anthropological Analysis of Blunt Force Trauma. Charles C Thomas, Springfield, pp 47–58
2.
go back to reference Christensen AM, Passalacqua NV, Bartelink EJ (2014) Forensic anthropology: current methods and practice. Academic Press, Oxford Christensen AM, Passalacqua NV, Bartelink EJ (2014) Forensic anthropology: current methods and practice. Academic Press, Oxford
3.
go back to reference Cappella A, Amadasi A, Castoldi E, Mazarelli D, Gaudio D, Cattaneo C (2014) The difficult task of assessing perimortem and postmortem fractures on the skeleton: a blind text on 210 fractures of known origin. J Forensic Sci 59:1598–1601CrossRefPubMed Cappella A, Amadasi A, Castoldi E, Mazarelli D, Gaudio D, Cattaneo C (2014) The difficult task of assessing perimortem and postmortem fractures on the skeleton: a blind text on 210 fractures of known origin. J Forensic Sci 59:1598–1601CrossRefPubMed
4.
go back to reference Symes SA, L’Abbé EN, Stull KE, Lacroix M, Pokines JT (2014) Chapter 13: taphonomy and the timing of bone fractures in trauma analysis. In: Pokines JT, Symes SA (eds) Manual of forensic taphonomy. CRC Press, Florida, pp 341–365 Symes SA, L’Abbé EN, Stull KE, Lacroix M, Pokines JT (2014) Chapter 13: taphonomy and the timing of bone fractures in trauma analysis. In: Pokines JT, Symes SA (eds) Manual of forensic taphonomy. CRC Press, Florida, pp 341–365
5.
go back to reference Symes SA, L’Abbé EN, Chapman EN, Wolff I, Dirkmaat DC (2012) Chapter 17: interpreting traumatic injury to bone in medicolegal investigations. In: Dirkmaat DC (ed) A companion to forensic anthropology. Wiley-Blackwell, Oxford, pp 340–388CrossRef Symes SA, L’Abbé EN, Chapman EN, Wolff I, Dirkmaat DC (2012) Chapter 17: interpreting traumatic injury to bone in medicolegal investigations. In: Dirkmaat DC (ed) A companion to forensic anthropology. Wiley-Blackwell, Oxford, pp 340–388CrossRef
6.
go back to reference Cunha E, Pinherio JE (2009) Antemortem trauma. In: Blau S, Ubelaker DH (eds) Handbook of forensic anthropology and archaeology. Left Coast Press, Walnut Creek, CA, pp 246–262 Cunha E, Pinherio JE (2009) Antemortem trauma. In: Blau S, Ubelaker DH (eds) Handbook of forensic anthropology and archaeology. Left Coast Press, Walnut Creek, CA, pp 246–262
7.
go back to reference Wieberg DAM, Wescott DJ (2008) Estimating the timing of long bone fractures: correlation between the postmortem interval, bone moisture content, and blunt force trauma fracture characteristics. J Forensic Sci 53:1028–1034CrossRefPubMed Wieberg DAM, Wescott DJ (2008) Estimating the timing of long bone fractures: correlation between the postmortem interval, bone moisture content, and blunt force trauma fracture characteristics. J Forensic Sci 53:1028–1034CrossRefPubMed
8.
go back to reference Ortner D (2008) Differential diagnosis of skeletal injuries. In: Kimmerle EH, Baraybar JP (eds) Skeletal trauma. CRC Press, Florida, pp 21–93 Ortner D (2008) Differential diagnosis of skeletal injuries. In: Kimmerle EH, Baraybar JP (eds) Skeletal trauma. CRC Press, Florida, pp 21–93
9.
go back to reference Hanaue K, Katakura A, Kasahara K, Kamiyama I, Takaki T, Shibahara T, Abe S, Ide Y (2007) Course of fracture line in sagittal splitting of human mandible. Bull Tokyo Dent Coll 48(4):163–170CrossRefPubMed Hanaue K, Katakura A, Kasahara K, Kamiyama I, Takaki T, Shibahara T, Abe S, Ide Y (2007) Course of fracture line in sagittal splitting of human mandible. Bull Tokyo Dent Coll 48(4):163–170CrossRefPubMed
10.
go back to reference Pechníková M, Porta D, Cattaneo C (2011) Distinguishing between perimortem and postmortem fractures: are osteons of any help? Int J Legal Med 125:591–595CrossRefPubMed Pechníková M, Porta D, Cattaneo C (2011) Distinguishing between perimortem and postmortem fractures: are osteons of any help? Int J Legal Med 125:591–595CrossRefPubMed
11.
go back to reference Ebacher V, Guy P, Oxland TR, Wang R (2012) Sub-lamellar microcracking and roles of canaliculi in human cortical bone. Acta Biomater 8:1093–10100CrossRefPubMed Ebacher V, Guy P, Oxland TR, Wang R (2012) Sub-lamellar microcracking and roles of canaliculi in human cortical bone. Acta Biomater 8:1093–10100CrossRefPubMed
12.
go back to reference Kieser J (2013) Biomechanics of bone and bony trauma. In: Kieser J, Taylor M, Carr D (eds) Forensic biomechanics. Wiley-Blackwell, Oxford, pp 35–70 Kieser J (2013) Biomechanics of bone and bony trauma. In: Kieser J, Taylor M, Carr D (eds) Forensic biomechanics. Wiley-Blackwell, Oxford, pp 35–70
13.
go back to reference Scheirs S, Hevink B, Ortega-Sánchez M, Jordana X, McGlynn H, Rodriguez-Baeza A, Malgosa A, Galtés I (2019) Intra vitam trauma pattern. Changing the paradigm of forensic anthropology? Int J Legal Med 133:661–668CrossRefPubMed Scheirs S, Hevink B, Ortega-Sánchez M, Jordana X, McGlynn H, Rodriguez-Baeza A, Malgosa A, Galtés I (2019) Intra vitam trauma pattern. Changing the paradigm of forensic anthropology? Int J Legal Med 133:661–668CrossRefPubMed
14.
go back to reference De Boer HH, Aarents MJ, Maat GJR (2013) Manual for the preparation and staining of embedded natural dry bone tissue sections for microscopy. Int J Osteoarchaeol 23:83–93CrossRef De Boer HH, Aarents MJ, Maat GJR (2013) Manual for the preparation and staining of embedded natural dry bone tissue sections for microscopy. Int J Osteoarchaeol 23:83–93CrossRef
15.
go back to reference O’Brien FJ, Taylor D, Lee TC (2005) The effect of bone microstructure on the initiation and growth of microcracks. J Orthop Res 23(2):475–480CrossRefPubMed O’Brien FJ, Taylor D, Lee TC (2005) The effect of bone microstructure on the initiation and growth of microcracks. J Orthop Res 23(2):475–480CrossRefPubMed
16.
go back to reference Schaffler MB, Choi K, Milgrom C (1995) Aging and matrix microdamage accumulation in human compact bone. Bone 17(6):521–525CrossRefPubMed Schaffler MB, Choi K, Milgrom C (1995) Aging and matrix microdamage accumulation in human compact bone. Bone 17(6):521–525CrossRefPubMed
17.
go back to reference Robling AG, Castillo AB, Turner CH (2008) Biomechanical and molecular regulation of bone remodeling. Annu Rev Biomed Eng 8:455–498CrossRef Robling AG, Castillo AB, Turner CH (2008) Biomechanical and molecular regulation of bone remodeling. Annu Rev Biomed Eng 8:455–498CrossRef
18.
go back to reference Jepsen KJ, Akkus OJ, Majeska RJ, Nadeau JH (2003) Hierarchical relationship between bone traits and mechanical properties in inbred mice. Mamm Genome 14(2):97–104CrossRefPubMed Jepsen KJ, Akkus OJ, Majeska RJ, Nadeau JH (2003) Hierarchical relationship between bone traits and mechanical properties in inbred mice. Mamm Genome 14(2):97–104CrossRefPubMed
19.
go back to reference Parfitt AM (2003) New concepts of bone remodeling: A unified spatial and temporal model with physiologic and pathophysiologic implications. In: Agarwal SC, Stout SD (eds) Bone loss and osteoporosis. Springer, Boston, MA Parfitt AM (2003) New concepts of bone remodeling: A unified spatial and temporal model with physiologic and pathophysiologic implications. In: Agarwal SC, Stout SD (eds) Bone loss and osteoporosis. Springer, Boston, MA
20.
go back to reference Qiu S, Rao DS, Fyhrie DP, Palnitkar S, Parfitt AM (2005) The morphological association between microcracks and osteocyte lacunae in human cortical bone. Bone 37(1):10–15CrossRefPubMed Qiu S, Rao DS, Fyhrie DP, Palnitkar S, Parfitt AM (2005) The morphological association between microcracks and osteocyte lacunae in human cortical bone. Bone 37(1):10–15CrossRefPubMed
21.
go back to reference Vashishth D, Verborgt O, Divine G, Schaffler MB, Fyhrie DP (2000) Decline in osteocyte lacunar density in human cortical bone is associated with accumulation of microcracks with age. Bone 26(4):375–380CrossRefPubMed Vashishth D, Verborgt O, Divine G, Schaffler MB, Fyhrie DP (2000) Decline in osteocyte lacunar density in human cortical bone is associated with accumulation of microcracks with age. Bone 26(4):375–380CrossRefPubMed
22.
go back to reference Mello RB, Silva MRR, Alves MTS, Evison MP, Guimarães MA, Francisco RA, Astolphi RD, Iwamura ESM (2017) Tissue microarray analysis applied to bone diagenesis. Scie Rep 7(1):1–12 Mello RB, Silva MRR, Alves MTS, Evison MP, Guimarães MA, Francisco RA, Astolphi RD, Iwamura ESM (2017) Tissue microarray analysis applied to bone diagenesis. Scie Rep 7(1):1–12
23.
go back to reference Marotti G, Cane V, Palazzini S, PalumboC. (1990) Structure-function relationships in the osteocytes. Ital J Min Elect Metab 4:93–106 Marotti G, Cane V, Palazzini S, PalumboC. (1990) Structure-function relationships in the osteocytes. Ital J Min Elect Metab 4:93–106
24.
go back to reference Aarden EM, Burger EH, Nijweide PJ (1994) Function of osteocytes in bone. J Cell Biochem 55:287–299CrossRefPubMed Aarden EM, Burger EH, Nijweide PJ (1994) Function of osteocytes in bone. J Cell Biochem 55:287–299CrossRefPubMed
25.
go back to reference Burger EH, Klein-Nulend J, van der Plas A, Nijweide PJ (1995) Function of osteocytes in bone—their role in mechanotransduction. Am Inst Nutr 22–3166(Suppl. 7):2020S-2023S Burger EH, Klein-Nulend J, van der Plas A, Nijweide PJ (1995) Function of osteocytes in bone—their role in mechanotransduction. Am Inst Nutr 22–3166(Suppl. 7):2020S-2023S
26.
go back to reference Rubin CT, McLeod KJ (1996) Inhibition of osteopenia by biophysical intervention. In: Marcus R, Feldman D, Kelsey J (eds) Osteoporosis. Academic, San Diego, CA, pp 351–371 Rubin CT, McLeod KJ (1996) Inhibition of osteopenia by biophysical intervention. In: Marcus R, Feldman D, Kelsey J (eds) Osteoporosis. Academic, San Diego, CA, pp 351–371
27.
go back to reference Turner CH, Pavalko FM (1998) Mechanotransduction and functional response of the skeleton to physical stress: the mechanisms and mechanics of bone adaptation. J Orthop Sci 3(6):346–355CrossRefPubMed Turner CH, Pavalko FM (1998) Mechanotransduction and functional response of the skeleton to physical stress: the mechanisms and mechanics of bone adaptation. J Orthop Sci 3(6):346–355CrossRefPubMed
28.
go back to reference Busse B, Djonic D, Milovanovic P, Hahn M, Püschel K, Ritchie RO, Djuric M, Amling M (2010) Decrease in the osteocyte lacunar density accompanied by hypermineralized lacunar occlusion reveals failure and delay of remodeling in aged human bone. Aging Cell 9:1065–1075CrossRefPubMed Busse B, Djonic D, Milovanovic P, Hahn M, Püschel K, Ritchie RO, Djuric M, Amling M (2010) Decrease in the osteocyte lacunar density accompanied by hypermineralized lacunar occlusion reveals failure and delay of remodeling in aged human bone. Aging Cell 9:1065–1075CrossRefPubMed
29.
go back to reference Boyce TM, Fyhrie DP, Glotkowski MC, Radin EL, Schaffler MB (1998) Damage type and strain mode associations in human compact bone bending fatigue. J Orthop Res 16(3):322–329CrossRefPubMed Boyce TM, Fyhrie DP, Glotkowski MC, Radin EL, Schaffler MB (1998) Damage type and strain mode associations in human compact bone bending fatigue. J Orthop Res 16(3):322–329CrossRefPubMed
30.
go back to reference Burr DB, Schaffler MB, Frederickson RG (1988) Composition of the cement line and its possible mechanical role as a local interface in human compact bone. J Biomech 21(11):939–945CrossRefPubMed Burr DB, Schaffler MB, Frederickson RG (1988) Composition of the cement line and its possible mechanical role as a local interface in human compact bone. J Biomech 21(11):939–945CrossRefPubMed
31.
go back to reference Hazenberg JG, Hentunen TA, Heino TJ, Kurata K, Lee TC, Taylor D (2009) Microdamage detection and repair in bone: fracture mechanics, histology, cell biology. Technol Health Care 17(1):67–75CrossRefPubMed Hazenberg JG, Hentunen TA, Heino TJ, Kurata K, Lee TC, Taylor D (2009) Microdamage detection and repair in bone: fracture mechanics, histology, cell biology. Technol Health Care 17(1):67–75CrossRefPubMed
32.
go back to reference Ritchie RO, Kinney JH, Kruzic JJ, Nalla RK (2005) A fracture mechanics and mechanistic approach to the failure of cortical bone. Fatigue Fract Eng Mater Struct 28(4):345–371CrossRef Ritchie RO, Kinney JH, Kruzic JJ, Nalla RK (2005) A fracture mechanics and mechanistic approach to the failure of cortical bone. Fatigue Fract Eng Mater Struct 28(4):345–371CrossRef
33.
go back to reference Frasca P (1981) Scanning-electron microscopy studies of ‘ground substance’in the cement lines, resting lines, hypercalcified rings and reversal lines of human cortical bone. Cells Tissues Organs 109(2):115–121CrossRef Frasca P (1981) Scanning-electron microscopy studies of ‘ground substance’in the cement lines, resting lines, hypercalcified rings and reversal lines of human cortical bone. Cells Tissues Organs 109(2):115–121CrossRef
Metadata
Title
Microcracking pattern in fractured bones: new approach for distinguishing between peri- and postmortem fractures
Authors
Michelle Winter-Buchwalder
Nathalie Schwab
Ignasi Galtés
Marisa Ortega-Sánchez
Sarah Scheirs
Xavier Jordana
Publication date
06-09-2022
Publisher
Springer Berlin Heidelberg
Published in
International Journal of Legal Medicine / Issue 1/2024
Print ISSN: 0937-9827
Electronic ISSN: 1437-1596
DOI
https://doi.org/10.1007/s00414-022-02875-1

Other articles of this Issue 1/2024

International Journal of Legal Medicine 1/2024 Go to the issue