PulseExploreJournal ClubDebatesTrendingResearchersJournals
Instagram
HomeExploreJournal ClubTrending
Synapse
⌘+K
Synapse
July 30, 2025Frontiers in Bioengineering and Biotechnology27 citationsOpen Access

Surface engineering of nano magnesium alloys for orthopedic implants: a systematic review of strategies to mitigate corrosion and promote bone regeneration

View Full Paper
YCYogesh ChaudhariMCManisha ChaudhariAGAmol D. Gholap

Key Points

  • Magnesium alloys are promising for biodegradable orthopedic implants with improved biocompatibility and osteoconductivity.
  • Micro-arc oxidation can reduce corrosion rates by 60%, transforming magnesium alloys into safer implants.
  • Advanced strategies including hydroxyapatite coatings and hybrid polymers improve mechanical strength and degradation control.
  • Emerging technologies like 4D bioprinting highlight the trend towards personalized orthopedic solutions, addressing patient-specific needs.

Abstract

Magnesium (Mg) alloys are transformative candidates for biodegradable orthopedic implants due to their bone-mimetic elastic modulus (10–30 GPa), biocompatibility, and osteogenic properties. However, rapid corrosion (2 mm/year) and hydrogen gas evolution (0.1–0.3 mL/cm 2 /day) in physiological environments hinder clinical adoption. This systematic review, leveraging insights from seven databases (PubMed ® , Embase, Web of Science™, Scopus ® , IEEE Xplore, FSTA, and Google Scholar), critically evaluates surface engineering innovations that address these challenges. Key findings demonstrate that micro-arc oxidation (MAO) reduces corrosion rates by 60% (0.3–0.8 mm/year) through ceramic oxide layers, while hydroxyapatite (HA) coatings further enhance osteoconductivity (0.25 mm/year). Nanoscale MgO not only promotes osteoblast adhesion (40% increase) and collagen synthesis but also reduces bacterial colonization by 78% via surface energy modulation, eliminating antibiotic dependency. Advanced strategies like hybrid coatings (e.g., zwitterionic polymers) and alloying with Zn/Ca/Sr synergistically improve mechanical strength (up to 380 MPa), degradation control (0.1–0.5 mm/year), and angiogenesis via Mg 2+ -mediated VEGF upregulation. Emerging trends such as 4D bioprinting of pH-responsive Mg scaffolds and patient-specific implants highlight the shift toward dynamic, personalized solutions. Despite progress, challenges persist in synchronizing degradation with bone healing timelines, particularly in osteoporotic or diabetic patients. This review underscores the paradigm shift toward nano surface engineering, positioning Mg alloys as multifunctional platforms for next-generation orthopedic implants, while advocating for interdisciplinary collaboration to bridge translational gaps.

Ask AI
Helpful
Bookmark
Share
View Full Paper

Cite This Study

Chaudhari et al. (2025) studied this question.

synapsesocial.com/papers/689a0945e6551bb0af8cee6dhttps://doi.org/10.3389/fbioe.2025.1617585
Ask AI
Helpful
Bookmark
Share
View Full Paper

Also Consider

Synapse has enriched 5 closely related papers on similar clinical questions. Consider them for comparative context:

  1. 1A review of current challenges and prospects of magnesium and its alloy for bone implant applications2022 · 210 citations
  2. 2Development of degradable magnesium-based metal implants and their function in promoting bone metabolism (A review)2022 · 90 citations
  3. 3Corrosion Behaviour of Magnesium Alloys and Chemical Conversion Coatings for their Improved Corrosion Resistance2022 · 2 citations
  4. 4Influence of hot deformation and composition on microstructure development of magnesium-stannide alloys2020 · 1 citations
  5. 5Assessing the long-term in vivo degradation behavior of magnesium alloys - a high resolution synchrotron radiation micro computed tomography study2022 · 14 citations