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The aim of this work is to further analyze the nature of the TiO2 passivation layer regarding structure, hydrophilicity and adsorption behavior, starting with the question how far metal and oxide properties are affected by the contact, regarding structural relaxation, atomic charges and work function. This determines how far the influence of metal has to be considered in simulations of TiO2 passivation layers. Mimicking the initial phases of implant contact with the biological environment, the adsorption of the inorganic ions on titanium oxides is to be investigated next, especially the influence of Ca2+ and HnPO4n-3 on the surface properties. Finally, biomolecule adsorption on TiO2 surfaces is investigated for understanding and improving their bioactivity.
Titanium and Titanium Dioxide
The properties of sharp interfaces formed between metallic titanium and a titanium dioxide layer with rutile or anatase structure and four different surface terminations were investigated. In all cases the work of separation is higher than the sum of surface energies, indicating the formation of an energetically very favorable interface region that glues the two phases together. The interface energy is negative, which means that for Ti and TiO2 bulk phases, mixing is energetically favorable.
The influence of the metal on the atomic and electronic structure of the oxide is limited to a few atomic layers. Depending on its modification, a passivation layer may give rise to up- (rutile) or downshift (anatase) of the work function of the underlying titanium metal.
Calcium and Phosphate
First principles molecular dynamics simulations in vacuum revealed stable bonds between Ca2+ and HnPO4n-3 ions and the investigated TiO2 surfaces. Ca2+ ions bind to 2–4 surface oxygen atoms, preferring peripheral positions as found on both rutile surfaces where adsorption energies reach 9 eV per ion. In solution the hydration energy drastically reduces these values.
Phosphate adsorbs to the TiO2 surface, but the adsorption energy is much lower than that of Ca2+ ions. The approach of phosphate is highly orientation dependent and hampered by the terminal oxygen atoms.
Both ab initio and force field simulations indicate enrichment of Ca2+ ions close to the surface, most of them directly bound to it, which results in a net positive charge. As the adsorption of phosphate takes longer and is strongly reinforced by adsorbed Ca2+ ions, it has become obvious that Ca2+ ions initiate the adsorption of calcium phosphate clusters to titania surfaces. However, the TiO2 surface does not necessarily act as a nucleation site for calcium phosphate crystallization, as adsorbed Ca2+ ions show reduced affinity towards phosphate compared to free ions in solution.
Collagen and Mechanical Stress
Coinciding force distance relations have been obtained for a variety of restraint force constants, expansion rates and environments. The resulting Young’s moduli are in the range of experimental values both at low and high strain ranges. For low strains the calculated Young’s modulus of about 2 GPa is comparable to experimental values between 3 and 5 GPa. For high strains it reaches 10 GPa. The Young’s moduli can be assigned to three different mechanisms of stretching, affecting the macroscopic linearity, the torsional angles and the bond lengths.
Chondroitin Sulfate (CS) and Hyaluronic Acid (HA)
A force field model for CS and HA could be established that reproduced experimental torsion angles and showed the same free energy surface (FES) as an ab initio model. Hydration affects the overall FES, but does not alter the position of the energetic minima. Stabilization of the conformation via bridging water molecules as suggested by other works is not necessary.
Both glycosaminoglycans adsorb to a hydroxylated rutile (100) surfaces despite the negative net charge both on surface and adsorbate. The presence of Na + ions is enough to compensate for the negative surface charge and to allow for adsorption. Ca2+ ions form additional bridges between negative groups on the surface and in the adsorbate.
The six extraocular muscles (EOMs) are arranged around the eyeball as agonist-antagonist pairs performing the eye movements. The EOMs comprise a distinct muscle group that is fundamentally different from other skeletal muscle, which is reflected on many levels, such as functionality, anatomy as well as in their molecular make-up. Physiologically EOMs are considered superfast, high endurance muscles that are continuously active. In addition, EOMs contain unusual slow-tonic fibers that share features with amphibian and avian slow-tonic fibers. EOMs also express slow/cardiac isoforms of proteins and genes along with the typical isoforms of fast muscle fibers. Another striking hallmark of EOM is their differential involvement in a number of diseases. For instance, EOMs are preferentially spared in Duchenne Muscular Dystrophy (DMD). DMD is the most common fatal, genetic disease in males clinically characterized by progressive muscle wasting. Mutations in the dystrophin gene result in a destabilization of the muscle membrane causing muscle fiber damage. While all other skeletal muscles deteriorate the EOMs remain morphologically and functionally healthy. In the pathogenesis of DMD elevated Ca2+ levels are believed to be an early event and it has been shown that EOMs are protected from pharmacologically induced Ca2+ damage. The goal of this study was to characterize the spared EOMs, in particular their Ca2+ homeostasis, in the context of DMD pathology to reveal new potential therapeutic targets for the disease. A combination of physiological, molecular and biochemical methods was used to investigate the Ca2+ homeostasis of EOMs to demonstrate clear differences compared with the fast limb muscle tibialis anterior (TA). Ca2+ handling of stimulated cultured EOM myotubes suggested more efficient Ca2+ removal from the cytoplasm after induced Ca2+ influx compared with cultured myoblasts from TA. Subsequent mRNA and protein expression analyses of myoblasts and adult muscle tissue revealed high expression levels of many key Ca2+ regulating and buffering proteins in rodent EOMs compared with TA. Among these Ca2+ proteins were slow/cardiac proteins, which normally are not found in fast muscles. For instance, the sarcoplasmic Ca2+ ATPase SERCA2 was elevated along with its regulator phospholamban (PLN). Further, PLN was preferentially endogenously phosphorylated at Thr17 suggesting continuous activation of SERCA2 and possibly the fast isoform SERCA1, the main Ca2+ pumps responsible for removing Ca2+ from the cytoplasm after muscle contraction. Furthermore, Ca2+ buffers, such as calsequestrin (CASQ2) and parvalbumin (PARV) were elevated. These results suggest that EOMs are endowed with a unique and superior Ca2+ homeostasis that facilitates efficient Ca2+ buffering and removal from the cytoplasm. This is in agreement with their continuous and fast activation cycles, as well as with a potential protective mechanism in prevention of Ca2+ overload in DMD. The extreme activity patterns of EOM suggested that a high activity of store-operated Ca2+ entry (SOCE) plays a critical part to replenish Ca2+ for rapid and continuous cycles of contractions. To extend the data on general Ca2+ homeostasis and because of possible implications of store-operated Ca2+ influx and other Ca2+ influx pathways in DMD, the expression patterns of group 1 transient receptor potential (TRP) channels and the proteins Orai1 and STIM1 were studied. The TRP channels, TRPC1, TRPC6 and TRPV4 channel proteins in addition to STIM1 showed higher expression in EOM compared with TA. High TRPC1, TRPV4 and STIM1 levels could play a significant role in the high fatigue resistance, muscle differentiation and SOCE in EOM. In addition, tissue from the mdx mouse model of DMD was investigated. The only channels differentially expressed in mdx EOM compared with normal EOM were TRPM4 and TRPM7 (decreased in mdx EOM) and TRPV4 (increased in mdx EOM). Although, these changes in mdx EOM were of small magnitude, they could point toward subtle compensatory changes related to the disease process. In general, EOMs seem to be unaffected by the disease and inherently protected. In conclusion, the results in this thesis have improved the understanding of the Ca2+ homeostasis in EOMs and suggest that EOM may be better able to prevent prolonged elevation of cytoplasmic Ca2+ levels. These data may help to design new therapeutic approaches targeting Ca2+ handling proteins to ameliorate muscular dystrophy.