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Biomedical subjects

H Rhodes

Publications and source records attributed to H Rhodes.

At least 19 recordsLinked to original sources

Relationship between degenerative joint disease and hip joint laxity by use of distraction index and Norberg angle measurement in a group of cats.

OBJECTIVE: To determine the relationship between degenerative joint disease (DJD) and passive laxity of the hip joint in a group of cats. DESIGN: Prospective study. ANIMALS: A select (nonrandomized) group of 78 cats. PROCEDURE: Standard hip-extended radiographic views and compression and distraction views of the pelvis were obtained from cats during sedation. Radiographs were evaluated, using an Orthopedic Foundation for Animals (OFA)-like scoring system for dogs. Passive joint laxity was measured, using Norberg angle (NA) and distraction index (DI). Hip laxity in cats with DJD was compared with hip laxity in cats without DJD. RESULTS: Hip dysplasia (HD) was subjectively diagnosed radiographically in 25 of 78 (32%) cats using the OFA-like scoring system. Nineteen cats had mild HD 4 had moderate HD, and 2 had severe HD. Fifteen of the 25 cats with HD had DJD. The NA ranged from 56 to 105. The mean NA in cats with DJD was (84 degrees) significantly lower than in cats without DJD (95 degrees). The DI ranged from 0.2 to 0.84. The mean DI for cats with DJD was (0.6) significantly higher than that for cats without DJD (0.49). Cats with a DI < 0.4 did not have DJD. Cats had an increased likelihood of having DJD with increased laxity in the coxofemoral joint, as measured by NA or DI. CLINICAL IMPLICATIONS: The mean NA for radiographically normal cats (92.4 degrees) was lower than that in radiographically normal dogs (103 degrees). The overall mean DI for cats in this group (0.51) is similar to dogs of breeds with high joint laxity, such as the Labrador Retriever (0.5). As in dogs, there is a relationship between DJD and laxity in the hip joint of cats.

Animals↗

Best practices in patient advocacy.

When an insurance claim or treatment authorization is denied, where can patients turn? More frequently they are turning to patient advocates who understand the information contained in their claims and medical records. Here's a look at some opportunities for HIM professionals in this growing field.

Benchmarking↗

Facility closure.

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Health Facility Closure↗

Response of emergency rooms to victims of interpersonal violence.

OBJECTIVE: This study explored whether emergency rooms in a metropolitan county had standard procedures or offered services that address the needs of victims of interpersonal violence. METHODS: Fifty hospital emergency rooms (75 percent of the facilities eligible to participate in the survey) responded to a 55-item questionnaire about their handling of victims of interpersonal violence. RESULTS: Emergency rooms generally relied on patient self-reports to determine whether a patient is a victim of violence. Standard operating procedures for reporting cases to state agencies and referrals for additional services were most likely to exist for areas in which hospitals' response is mandated by law, such as sexual assault and child abuse. In addition, three-fourths of the hospitals had procedures for dealing with elder abuse, an area in which reporting is strongly encouraged. Most direct services received by victims were not specifically targeted to them but were services offered to the general emergency room population. The most frequent referrals were to rape advocacy groups and battered women's groups. CONCLUSIONS: The hospitals were most likely to respond to victims in areas in which their actions were mandated by law, such as sexual assault and child abuse, or strongly recommended, such as elder abuse. The majority of emergency rooms do not conduct adequate epidemiological surveillance of injuries resulting from interpersonal violence. Protocols, services, and referrals for victims of family violence, peer violence, and other forms of interpersonal violence should be mandated by law or by standards of treatment.

Adult↗

Ismail's world.

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Child Nutritional Physiological Phenomena↗

Nitrogenase. VIII. Mössbauer and EPR spectroscopy. The MoFe protein component from Azotobacter vinelandii OP.

We have studied the molybdenum-iron protein (MoFe protein, also known as component I) from Azobacter vinelandi using Mössbauer spectroscopy and electron paramagnetic resonance on samples enriched with 57Fe. These spectra can be interpreted in terms of two EPR active centers, each of which is reducible by one electron. A total of four different chemical environments of Fe can be discerned. One of them is a cluster of Fe atoms with a net electronic spin of 3/2, one of them is high-spin ferrous iron and the remaining two are iron in a reduced state (probably in clusters). The results are as follows: Chemical analysis yields 11.5 Fe atoms and 12.5 labile sulfur atoms per molybdenum atom; the molecule contains two Mo atoms per 300 000 daltons. The EPR spectrum of the MoFe protein exhibits g values at 4.32, 3.65 and 2.01, associated with the ground state doublet of a S = 3/2 spin system. The spin Hamiltonian H = D(S2/z minus 5/4 + lambda(S2/x minus S2/y)) + gbeta/o S-H fits the experimental data for go = 2.00 and lambda = 0.055. Quantitative analysis of the temperature dependence of the EPR spectrum yields D/k = 7.5 degrees K and 0.91 spins/molybdenum atom, which suggests that the MoFe protein has two EPR active centers. Quantitative evaluation of Mössbauer spectra shows that approximately 8 iron atoms give rise to one quadrupole doublet; at lower temperatures magnetic spectra, associated with the groud electronic doublet, are observed; at least two magnetically inequivalent sites can be distinguished. Taken together the data suggest that each EPR center contains 4 iron atoms. The EPR and Mössbauer data can only be reconciled if these iron atoms reside in a spin-coupled (S = 3/2) cluster. Under nitrogen fixing conditions the magnetic Mössbauer spectra disappeared concurrently with the EPR signal and quadrupole doublets are obserced at all temperatures. The data suggest that each EPR active center is reduced by one electron. The Mössbauer investigation reveals three other spectral components characteristic of iron nuclei in an environment of integer or zero electronic spin, i.e. they reside in complexes which are "EPR-silent". One of the components (3-4 iron atoms) has Mössbauer parameters characteristic of the high-spin ferrous iron as in reduced ruberdoxin. However, measurements in strong fields indicate a diamagnetic environment. Another component, representing 9-11 iron atoms, seems to be diamagnetic also. It is suggested that these atoms are incorporated in spin-coupled clusters.

Azotobacter↗