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Biomedical subjects

C Hawkins

Publications and source records attributed to C Hawkins.

At least 37 records · Page 2Linked to original sources

The importance of the peripheral blood film in systemic amyloidosis.

A peripheral blood film reflecting hyposplenism is an important finding. Not only does it indicate the risk to the patient of fulminant sepsis requiring preventative action but it may also direct further investigations towards an underlying medical condition. The occurrence of hyposplenism in systemic amyloidosis has been described. We present three cases which demonstrate this association and highlight the value of the peripheral blood film.

Adult↗

Testicular cancer: a review.

PURPOSE/OBJECTIVES: To describe the pathophysiologic mechanisms, histologic and clinical staging, diagnosis, and medical and nursing management of testicular cancer. DATA SOURCES: Published studies, review articles, and Physician Data Query database. DATA SYNTHESIS: Testicular cancer is a complex disease resulting from transformation of gonadal tissues. The pathophysiologic mechanisms involve damage to tissue in utero and after birth. Orchiectomy is the treatment of choice for early-stage disease. Orchiectomy can have profound physiologic and psychological consequences for young males. Subsequent chemotherapy and radiation therapy also may have severe side effects including azoospermia, bone marrow suppression, nephrotoxicity, and pulmonary toxicity. CONCLUSIONS: Early detection of this disease results in improved patient outcomes. Patients treated with radical inguinal orchiectomy and radiation therapy have fewer long-term side effects and toxicities than patients who require more extensive surgery and chemotherapy. IMPLICATIONS FOR NURSING PRACTICE: Nursing care must focus not only on relieving the patient's physical symptoms but on helping him deal with the psychosexual issues associated with the disease and its treatment.

Humans↗

Comparison of the effects of the membrane-associated Ca2+/calmodulin-dependent protein kinase on Ca(2+)-ATPase function in cardiac and slow-twitch skeletal muscle sarcoplasmic reticulum.

In both cardiac and slow-twitch skeletal muscle sarcoplasmic reticulum (SR) there are several systems involved in the regulation of Ca(2+)-ATPase function. These include substrate level regulation, covalent modification via phosphorylation-dephosphorylation of phospholamban by both cAMP-dependent protein kinase (PKA) and Ca2+/calmodulin-dependent protein kinase (CaM kinase) as well as direct CaM kinase phosphorylation of the Ca(2+)-ATPase. Studies comparing the effects of PKA and CaM kinase on cardiac Ca(2+)-ATPase function have yielded differing results; similar studies have not been performed in slow-twitch skeletal muscle. It has been suggested recently, however, that phospholamban is not tightly coupled to the Ca(2+)-ATPase in SR vesicles from slow-twitch skeletal muscle. Our results indicate that assay conditions strongly influence the extent of CaM kinase-dependent Ca(2+)-ATPase stimulation seen in both cardiac and slow-twitch skeletal muscle. Addition of calmodulin (0.2 microM) directly to the Ca2+ transport assay medium results in minimal (approximately 112-130% of control) stimulation of Ca2+ uptake activity when the Ca2+ uptake reaction is initiated by the addition or either ATP or Ca2+/EGTA. On the other hand, prephosphorylation of the SR by the endogenous CaM kinase and subsequent transfer of the membranes to the Ca2+ transport assay medium results in stimulation of Ca2+ uptake activity (202% of control). These effects are observable in both cardiac and slow-twitch skeletal muscle SR. PKA stimulates Ca2+ uptake markedly (215% of control) when the Ca2+ uptake reaction is initiated by the addition of prephosphorylated SR membranes or by Ca2+/EGTA but minimally (130% of control) when the Ca2+ uptake reaction is initiated by the addition of ATP.(ABSTRACT TRUNCATED AT 250 WORDS)

Animals↗

Association of p34cdc2 and cyclin B1 during meiotic maturation in porcine oocytes.

The relative levels and association of p34cdc2 and cyclin B1 have been determined in pig oocytes during meiotic progression from G2 to metaphase II (MII). Fully grown G2-arrested porcine oocytes contained large amounts of free p34cdc2 and extremely small amounts of p34cdc2-cyclin B1 complex which did not increase in amount during the GV stage. Cyclin B1 is not synthesized in measurable quantities until 23 hr after the start of maturation. During the first metaphase (MI) the amount of both cyclin B1 and the p34cdc2-cyclin B1 complex increased sharply until 35 hr. Thereafter the amount of the p34cdc2-cyclin B1 complex increased again to 45 hr, resulting in higher levels of the complex in MII than in MI. Moreover, three distinct migration forms of p34cdc2 were detected in pig oocytes by immunoblotting with anti-PSTAIRE antibody, and most of the cyclin B1-associated p34cdc2 was detected in the lower band in MI oocytes but migrated in the second band during MII. These results suggest that cyclin B1 levels in porcine oocytes differ from those in starfish, clam, and Xenopus oocytes in which considerably higher concentrations of cyclin B1 appear to be present during the GV stage and that the nature of the association between p34cdc2 and cyclin B1 changes between the first and the second metaphase.

Animals↗

Sarcoplasmic reticulum calcium pump in cardiac and slow twitch skeletal muscle but not fast twitch skeletal muscle undergoes phosphorylation by endogenous and exogenous Ca2+/calmodulin-dependent protein kinase. Characterization of optimal conditions for calcium pump phosphorylation.

We have demonstrated recently that in cardiac sarcoplasmic reticulum (SR), a membrane-associated Ca2+/calmodulin-dependent protein kinase (CaM kinase) phosphorylates and activates the Ca(2+)-pumping ATPase (Ca(2+)-ATPase) in addition to phosphorylating the previously characterized substrates, phospholamban, and Ca2+ release channel (ryanodine receptor) (Xu, A., Hawkins, C., and Narayanan, N. (1993) J. Biol. Chem. 268, 8394-8397). The present study shows that a CaM kinase regulatory system capable of modulating SR Ca2+ pump activity through direct phosphorylation of the Ca(2+)-ATPase is functional in slow twitch but not fast twitch skeletal muscle. Incubation of SR vesicles isolated from rabbit slow twitch (soleus) and fast twitch (adductor magnus) skeletal muscles in the presence of Ca2+ and calmodulin resulted in phosphorylation of the Ca(2+)-ATPase in slow twitch muscle SR but not in fast twitch muscle SR. Exogenous CaM kinase II, which stimulated phosphorylation of the cardiac and slow twitch muscle SR Ca(2+)-ATPase, failed to phosphorylate fast twitch muscle SR Ca(2+)-ATPase. These observations demonstrate that CaM kinase-catalyzed phosphorylation of the Ca2+ pump is isoform-specific since heart and slow twitch muscle express the same Ca(2+)-ATPase isoform (SERCA2a), which is distinct from that of fast twitch muscle (SERCA1). As in the case of cardiac SR Ca(2+)-ATPase, phosphorylation of the slow twitch muscle SR Ca(2+)-ATPase (occurring at a serine residue) resulted in a 2-fold increase in catalytic activity of the enzyme without alteration in its Ca2+ sensitivity. In addition, Ca2+/calmodulin-dependent prephosphorylation of slow twitch muscle SR resulted in a greater than 2-fold increase in its Ca2+ transport activity. In both cardiac and slow twitch muscle SR, phosphorylation of the Ca(2+)-ATPase by the endogenous CaM kinase occurred rapidly (maximum within 2 min at 37 degrees C), had similar pH optimum (8.5-9.0), temperature optimum (30 degrees C), and calmodulin concentration-dependence (k0.5 50-60 nM). cAMP-dependent protein kinase did not phosphorylate the Ca(2+)-ATPase appreciably in either cardiac or slow twitch muscle SR. These findings suggest a muscle-specific role for the membrane-associated CaM kinase in the modulation of Ca2+ uptake and release functions of the SR. In cardiac and slow twitch muscle, phosphorylation of the SR Ca(2+)-ATPase by CaM kinase might provide a novel mechanism for the modulation of the enzymatic and Ca2+ transport functions of this enzyme.

Animals↗

Comparison of the effects of fluoride on the calcium pumps of cardiac and fast skeletal muscle sarcoplasmic reticulum: evidence for tissue-specific qualitative difference in calcium-induced pump conformation.

Comparison of the effects of fluoride (NaF, 1-10 mM) on the catalytic and ion transport functions of the Ca(2+)-ATPase in sarcoplasmic reticulum (SR) vesicles isolated from rabbit cardiac and fast-twitch skeletal muscles revealed similarities as well as striking tissue-specific differences depending on the experimental conditions employed. Short preincubation (3 min at 37 degrees C) of cardiac or fast muscle SR with fluoride in the absence of Ca2+ and ATP prior to initiating enzyme turnover by simultaneous addition of Ca2+ and ATP to the assay medium resulted in a strong inhibitory effect of fluoride on ATP-energized (oxalate-facilitated) Ca2+ uptake and Ca(2+)-ATPase activity. On the other hand, when turnover was initiated by the addition of ATP to SR preincubated with fluoride in the presence of Ca2+ but in the absence of ATP, fluoride caused concentration-dependent stimulation of active Ca2+ uptake by fast muscle SR with no appreciable change in Ca(2+)-dependent phosphoenzyme (EP) formation (from ATP) or Ca(2+)-ATPase activity but inhibition of active Ca2+ uptake by cardiac SR with concomitant inhibition of EP formation and Ca(2+)-ATPase activity. Exposure of cardiac or fast muscle SR to fluoride in the presence of both Ca2+ and ATP resulted in concentration-dependent stimulatory effect of fluoride on Ca2+ uptake with no change in EP formation or Ca(2+)-ATPase activity, this effect diminished substantially at saturating oxalate concentration in the assay. Assessment of the effects of deferoxamine (1 mM) and exogenous aluminum (10 microM) did not indicate a requirement for aluminum in the inhibitory or stimulatory effect of fluoride. These results suggest that (a) the Ca2+ and ATP-deprived (E1/E2) but not the Ca2+ plus ATP-liganded (CaE1ATP) conformation of the SR Ca(2+)-ATPase is susceptible to inhibition by fluoride in both cardiac and fast muscle; (b) the Ca(2+)-bound conformation (CaE1) of the SR Ca(2+)-ATPase is susceptible to inhibition in cardiac muscle but is refractory to fluoride in fast muscle; and (c) the stimulatory effect of fluoride is largely secondary to its ability to mimic the action of oxalate in intravesicular Ca2+ trapping when the fluoride-resistant enzyme is turning over normally. Fluoride inhibited phosphorylation of the Ca(2+)-free enzyme by Pi in cardiac and fast muscle SR indicating that fluoride sensitivity of the phosphorylation site of the SR Ca(2+)-ATPase is similar in cardiac and fast muscle.(ABSTRACT TRUNCATED AT 400 WORDS)

Adenosine Triphosphate↗

Stimulus exposure time and perceptual memory.

The recent explosion of research on implicit memory has facilitated the examination of perceptual and conceptual processes in the encoding of information. Nevertheless, stimulus exposure time--the amount of time that a stimulus is physically available to a perceiver's scrutiny--has received little attention. In the present paper, we examine the effect of stimulus exposure time on three implicit memory measures (word-fragment completion, perceptual identification, and general knowledge) and two explicit memory measures (graphemic cued recall and semantic cued recall). In Experiment 1, we demonstrated that increases in exposure time lead to increases in implicit perceptual memory, but not to implicit conceptual memory, when the encoding task focuses on perceptual features of the stimulus. We replicated this effect in Experiment 2 and demonstrated that increases in exposure time lead to increases in perceptual and conceptual memory when the measures are explicit. Thus, the current experiments demonstrate that manipulations of exposure time lead to dissociations in implicit, but not explicit, memory.

Adolescent↗

Overproduction, purification and characterization of the Escherichia coli ferritin.

Recent studies have indicated that Escherichia coli possesses at least two iron-storage proteins, the haem-containing bacterioferritin and ferritin. The ferritin protein has been amplified 600-fold to 11-14% of total cell protein in a bfr mutant and purified to homogeneity with an overall yield of 13%. The cellular ferritin content remained relatively constant throughout the growth cycle and amplification was accompanied by a 2.5-fold increase in cellular iron content. The isolated ferritin contained 5-20 non-haem iron atoms/holomer and resembled the eukaryotic ferritins rather than the prokaryotic bacterioferritins in containing no haem. The 24 subunits of this ferritin (M(r) 19,400) assemble into a spherical protein shell (12 +/- 1 nm diameter, M(r) 465,000) which sequesters at least 2000 iron atoms in vitro to form an electron-dense iron core of 7.9 +/- 1 nm diameter. Electron-microscopic and Mössbauer spectroscopic studies with iron-loaded ferritin showed that the core can be either crystalline (ferrihydrite) or amorphous, depending on the absence or presence of phosphate, respectively. Mössbauer spectroscopy with intact E. coli revealed a novel-high spin Fe(II) component which is enhanced in bacteria amplified for ferritin but not in the parental strain. Western blotting showed that ferritin and bacterioferritin are immunologically distinct proteins. E. coli is thus an organism containing both a ferritin and a bacterioferritin and the relative roles of the two iron-storage proteins are discussed in this study.

Amino Acid Sequence↗

Phosphorylation and activation of the Ca(2+)-pumping ATPase of cardiac sarcoplasmic reticulum by Ca2+/calmodulin-dependent protein kinase.

It is well known that phosphorylation of the membrane protein phospholamban by cAMP-dependent or Ca2+/calmodulin-dependent protein kinase results in the activation of the Ca(2+)-pumping ATPase of cardiac sarcoplasmic reticulum (SR); such enzyme activation is thought to be due to the disruption of an inhibitory interaction of non-phosphorylated phospholamban with the ATPase. We describe here a novel mechanism for the regulation of the ATPase through direct phosphorylation of this enzyme by a Ca2+/calmodulin-dependent protein kinase (CaM kinase) associated with the SR membrane. It is shown that incubation of cardiac SR in the presence of Ca2+ and calmodulin results in the phosphorylation of the ATPase in addition to the previously recognized substrates of CaM kinase, viz. phospholamban and Ca2+ channel. The phosphorylated amino acid in the ATPase has been identified as serine. Phosphorylation of the membrane-bound ATPase is stimulated by exogenous CaM kinase. Furthermore, ATPase purified from cardiac SR is phosphorylated by exogenous CaM kinase and the phosphorylated enzyme displays 2-fold increase in catalytic activity without any appreciable change in its Ca2+ sensitivity. Thus, direct phosphorylation of the Ca(2+)-pumping ATPase by CaM kinase can stimulate its enzymatic activity and, therefore, Ca2+ transport function.

Animals↗

Overproduction, purification and characterization of the bacterioferritin of Escherichia coli and a C-terminally extended variant.

The bacterioferritin (BFR) of Escherichia coli is an iron-sequestering haemoprotein composed of 24 identical polypeptide chains forming an approximately spherical protein shell with a central iron-storage cavity. BFR and BFR-lambda, a variant with a 14-residue C-terminal extension, have been amplified (120-fold and 50-fold, respectively), purified by a new procedure and characterized. The overproduced BFR exhibited properties similar to those of natural BFR, but the iron content (25-75 non-haem Fe atoms/molecule) was 13-39-fold lower. Two major assembly states of BFR were detected, a 24-subunit protein (tetracosamer) and a novel haem-containing subunit dimer. BFR-lambda subunits assembled into tetracosamers having the same external-surface properties as BFR, presumably because their C-terminal extensions project into and occupy about 60% of the central cavity. As a result, BFR-lambda failed totake up iron under conditions that allowed incorporation into BFR in vitro. The haem content of BFR-lambda (1-2 haems/tetracosamer) was lower than that of BFR (3.5-10.5 haems/tetracosamer) and this, together with a difference in the visible spectra of the two haemoproteins, suggested that the C-terminal extensions in BFR-lambda perturb the haem-binding pockets. A subunit dimer form of BFR-lambda was not detected. A combination of Mössbauer spectroscopy and electron diffraction showed that the BFR loaded with iron in vitro has a ferrihydrite-like iron core, whereas the in-vivo loaded protein has an amorphous core.

Amino Acid Sequence↗

The effect of a chimeric mouse-human CD7 antibody on human T, natural killer, and lymphokine-activated killer cell activity in vitro.

A chimeric CD7 antibody has been constructed with mouse variable and human constant regions and is currently being assessed in the prophylaxis of renal graft rejection. In this study we have investigated if this antibody or its murine parental form inhibits the function of a number of immune effector mechanisms involved in host defense against infection and/or malignancy. Most memory T cells and all natural killer cells express the CD7 antigen and could therefore be affected by CD7 antibody. Murine and chimeric CD7 antibodies significantly inhibit the alloproliferation of naive (65 +/- 4% and 66 +/- 8%, respectively) but not memory T cells (86 +/- 2% and 98 +/- 4%, respectively) in a primary mixed lymphocyte reaction relative to the negative control CD10 antibody (P less than 0.001). The memory T cell proliferative response to recall antigen is also largely unaffected by murine and chimeric CD7 antibodies relative to the negative control antibody (91 +/- 12% and 103 +/- 10%, respectively). The CD7 antigen is almost completely modulated from the surface of NK cells after incubation for 24 hr with either the murine or chimeric CD7, but not the CD10, negative control. The modulation of CD7 antigen by antibody, however, does not affect the cytotoxic function of either the NK or lymphokine-activated killer cells significantly. Preincubation with the chimeric antibody however, consistently showed a small inhibition relative to the negative control of 75-80% in NK assays and to 80-90% in LAK assays. These data suggest that both murine and chimeric CD7 antibodies may have a selective effect on alloproliferation but may largely spare a major component of the host's innate immunity as well as memory T cell proliferation to previously encountered antigens.

Antibodies↗

The bistratenes: new cytotoxic marine macrolides which induce some properties indicative of differentiation in HL-60 cells.

The biological effects of cytotoxic macrolide polyethers, the bistratenes, isolated from the ascidian Lissoclinum bistratum, have been examined. Bistratene A was toxic to HL-60 human promyelocytic leukemia cells with an IC50 value of 424 nM. At lower concentrations (10-100 nM), bistratene A induced the incomplete differentiation of these cells along the monocyte/macrophage pathway. These effects were not due to inhibition of DNA synthesis. Bistratene B had similar effects to bistratene A. At micromolar concentrations these compounds enhance the phospholipid-dependent activity of type II protein kinase C from bovine spleen. The bistratenes provide new probes for studying the molecular mechanisms governing cell growth and differentiation.

Acetamides↗