Cra­nio­plasty Mate­rials: Past and Pre­sent

As alre­a­dy men­tio­ned in the histo­ry of cra­nio­plasty, thou­sands of years ago, the first pri­mi­ti­ve cra­nio­plasty pro­ce­du­res used, among other things, pre­cious metals; howe­ver, in the late 19th cen­tu­ry, the first bone grafts were used to repair cra­ni­al defects. The two world wars of the 20th cen­tu­ry and the num­e­rous asso­cia­ted inju­ries demons­tra­ted that usa­ge of auto­log­ous bone was insuf­fi­ci­ent due to its limi­t­ed avai­la­bi­li­ty, cou­pled with increased infec­tion rates and the need for a secon­da­ry ope­ra­ti­on at the patient’s bone donor site.

Mats­u­no et al. report infec­tion rates of over 25 % with the use of auto­log­ous bone. In this con­text, expe­ri­ments were also con­duc­ted using ani­mal bones from dogs, mon­keys, geese, rab­bits, or cal­ves. In 1901, Mar­chand repor­ted that boi­led and per­fo­ra­ted ani­mal horns—such as tho­se from buf­fa­lo or even ivo­ry were par­ti­cu­lar­ly bio­com­pa­ti­ble.

In 1915, Mores­tin repor­ted the use of human cada­ver car­ti­la­ge to cover a cra­ni­al defect. Howe­ver, this car­ti­la­ge show­ed no signi­fi­cant cal­ci­fi­ca­ti­on at the implan­ta­ti­on site and was gene­ral­ly too weak to pro­vi­de ade­qua­te mecha­ni­cal pro­tec­tion. Ste­ri­liza­ti­on and pre­pa­ra­ti­on of the mate­ri­al for implan­ta­ti­on fur­ther wea­k­en­ed it. Due to high rates of infec­tion and resorp­ti­on, this tre­at­ment method did not gain accep­tance in the long term.

This peri­od also saw attempts to use strong, mal­leable and more easi­ly ste­ri­lizable mate­ri­als such as alu­mi­num. Unfort­u­na­te­ly, this mate­ri­al cau­sed inflamm­a­ti­on of the sur­roun­ding soft tis­sue, sei­zu­res, and slow­ly dis­sol­ved at the implan­ta­ti­on site, which ulti­m­ate­ly led to the aban­don­ment of this mate­ri­al. Other metals such as lead, tan­talum, or even pla­ti­num were used. While lead resul­ted in pre­dic­ta­ble signs of toxi­ci­ty and rela­ted fata­li­ties, tan­talum and pla­ti­num were used with some suc­cess; howe­ver, due to their high mate­ri­al cost, they were not sui­ta­ble for mass pro­duc­tion.

Pla­ti­num in par­ti­cu­lar, demons­tra­ted good bio­com­pa­ti­bi­li­ty and no signs of inflamm­a­ti­on in the sur­roun­ding tis­sue. The situa­ti­on was simi­lar with tan­talum, who­se use, howe­ver, resul­ted in cases of hea­da­ches cau­sed by sen­si­ti­vi­ty to wea­ther chan­ges, due to the material’s high ther­mal con­duc­ti­vi­ty.  Gold and sil­ver also yiel­ded simi­lar­ly posi­ti­ve results as pla­ti­num but shared the same dis­ad­van­ta­ge of high cost. Fur­ther, sil­ver cau­sed dis­co­lo­ra­ti­on of the scalp.

In addi­ti­on to metals, auto­grafts, allo­grafts, and poly­mers, attempts were also made using inor­ga­nic cera­mics to find a sui­ta­ble bone sub­sti­tu­te. It makes sen­se to replace natu­ral bone with cal­ci­um phos­pha­te, more spe­ci­fi­cal­ly with hydro­xya­pa­ti­te (Ca5[OH|(PO4)3]) the nati­ve struc­tu­ral com­po­nent of bone. Advan­ta­ges of this mate­ri­al include good bio­com­pa­ti­bi­li­ty and osseo­in­te­gra­ti­on, as well as good vas­cu­la­riza­ti­on due to the poro­si­ty of the mate­ri­al. Dis­ad­van­ta­ges include pro­no­un­ced britt­le­ness and fra­gi­li­ty, as with many cera­mics, as well as the poten­ti­al for bac­te­ria to adhe­re within the porous mate­ri­al. Nevert­hel­ess, for many years, hydro­xya­pa­ti­te was the pre­fer­red mate­ri­al for clo­sing cra­ni­al hard tis­sue defects, alt­hough good osseo­in­te­gra­ti­on in pati­ents is often not achie­ved until after 6 months or more. In the mean­ti­me, wea­ring a hel­met can pro­tect against frac­tu­re of the implant.

Nowa­days, poly­me­thyl methacry­la­te (PMMA) is often used to cover cra­ni­al defects; it was first used in pati­ents in the 1950s. The liquid methacry­la­te mono­mer is poly­me­ri­zed with or wit­hout a mold, using a radi­cal initia­tor under con­di­ti­ons of inten­se heat gene­ra­ti­on in the ope­ra­ting room, resul­ting in har­den­ed (and shaped) PMMA that can be cut to size. With this method of pro­duc­tion, howe­ver, not all radi­cals and mono­mers can ever be washed out of the pro­cess, so resi­du­al mole­cu­les always remain and are released at the implan­ta­ti­on site. This can lead to inflamm­a­ti­on or irri­ta­ti­on of the sur­roun­ding tis­sue, and in seve­re cases may neces­si­ta­te explan­ta­ti­on. In in vivo appli­ca­ti­ons of PMMA, such as total hip arthro­plasty, the implant is fabri­ca­ted direct­ly within the joint at the patient’s implan­ta­ti­on site. With this pro­ce­du­re, even lar­ger amounts of radi­cals and MMA mono­mers are released into the pati­ent, which can lead to a bone-cement reac­tion, with—depending on the severity—reported 30-day mor­ta­li­ty rates of up to 88 %.

In addi­ti­on to PMMA, the­re is a who­le ran­ge of other mate­ri­als used in the the manu­fac­tu­re of pati­ent-spe­ci­fic skull implants. Each of the­se mate­ri­als has its own advan­ta­ges and dis­ad­van­ta­ges, and at pre­sent, it is not pos­si­ble to recom­mend a sin­gle “best” mate­ri­al across the board for every appli­ca­ti­on and every pati­ent. The choice of the mate­ri­al best sui­ted to the defect is at the dis­cre­ti­on of the trea­ting phy­si­ci­an and should be careful­ly con­side­red and eva­lua­ted on a case-by-case basis.

Based on the expe­ri­en­ces and fin­dings men­tio­ned abo­ve, ide­al cra­nio­plasty mate­ri­als should have the fol­lo­wing pro­per­ties:

  • Adapts per­fect­ly to the defect and ana­to­my
  • Radio­lucen­cy for impro­ved (post-ope­ra­ti­ve) dia­gno­stics
  • Resistant to infec­tion, with bio­film- and germ-repel­lent sur­face pro­per­ties
  • No shrin­kage or expan­si­on when hea­ted
  • Frac­tu­re-resistant yet ela­s­tic
  • Bone-like pro­per­ties
  • Easy to work with intra­ope­ra­tively
  • Cost-effec­ti­ve
  • Easy and quick to use

At 3di, we spe­cia­li­ze in three mate­ri­als that meet the high stan­dards for a bone sub­sti­tu­te mate­ri­al in the cra­ni­al regi­on and have been pro­ven over mul­ti­ple deca­des. This allows us to respond fle­xi­bly to various medi­cal requi­re­ments and offer solu­ti­ons for a wide ran­ge of defects. The implant mate­ri­als we use are the anti­mi­cro­bi­al glass-cera­mic BIOVERIT®II, the metal­lic tita­ni­um alloy Ti6Al4V, and the ther­mo­pla­s­tic poly­ether­ether­ke­to­ne (PEEK). Our pati­ent-spe­ci­fic implants are curr­ent­ly manu­fac­tu­red using CNC mil­ling right here in Jena, eli­mi­na­ting time-expen­ses and other risks asso­cia­ted with on-site fabri­ca­ti­on in the ope­ra­ting room.

Various 3di implants made from different materials

We will eva­lua­te the­se three mate­ri­als we are using in more detail in upco­ming posts and pre­sent even more inte­res­t­ing facts.

Quel­len

Durand JL, Reni­er D, & Marchac D: The histo­ry of cra­nio­plasty. Ann Chir Plast Esthet 42:75–83, 1997. (FRA)

Mats­u­no A, Tana­ka H, Iwa­mu­ro H, Takan­ashi S, Miya­wa­ki S, & Nakashi­ma M, et al.: Ana­ly­ses of the fac­tors influen­cing bone graft infec­tion after delay­ed cra­nio­plasty. Acta Neu­ro­chir (Wien) 148:535–540, 2006

Black SP: Recon­s­truc­tion of the supra­or­bi­tal ridge using alu­mi­num. Surg Neu­rol. 1978;9:121–8. PMID:625697

Sira­cu­sa V, Mai­mo­ne G, Anto­nel­li V. Sta­te-of-Art of Stan­dard and Inno­va­ti­ve Mate­ri­als Used in Cra­nio­plasty. Poly­mers (Basel). 2021 Apr 30;13(9):1452. doi: 10.3390/polym13091452, PMID:33946170, PMCID: PMC8124570.

Gaik C, Schmitt N, Wies­mann T: Kno­chen­ze­ment­re­ak­ti­on – Patho­phy­sio­lo­gie, Dia­gnos­tik und Behand­lungs­op­tio­nen. Anästh Inten­siv­med 2019;60:124–133. DOI: 10.19224/ai2019.124

Grant GA, Jol­ley M, Ellen­bo­gen RG, Roberts TS, Gruss JR, & Loe­ser JD: Fail­ure of auto­log­ous bone-assis­ted cra­nio­plasty fol­lo­wing decom­pres­si­ve cra­ni­ec­to­my in child­ren and ado­le­s­cents. J Neu­ro­surg 100:2 Sup­pl Pedia­trics 163–168, 2004

Kühn K‑D, Lieb E, Ber­be­rich C (2016:) PMMA bone cement: what is the role of local anti­bo­tics? Maî­tri­se ortho­pé­di­que, Pro­cee­ding of N°243, com­mis­si­on pari­taire 1218T86410, S 12–18 (1148 2362)

Aydin S, Kucuky­uruk B, Abu­zay­ed B, Aydin S, Sanus GZ. Cra­nio­plasty: Review of mate­ri­als and tech­ni­ques. J Neu­ro­sci Rural Pract. 2011 Jul;2(2):162–7. doi: 10.4103/0976–3147.83584, PMID: 21897681, PMCID: PMC3159354.