Cycle lumping or--sampling a witches' brew?
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Biomedical subjects
Publications and source records attributed to C Akarsu.
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In this study the fertility and outcome of intracytoplasmic sperm injection (ICSI) using megalohead spermatozoa from the ejaculates and testicles was evaluated. Seventeen males with megalohead and pinhead sperm forms in their ejaculate were studied in 22 cycles. A high number of sperm heads without tails and abundant round spermatid forms were commonly observed. Round-headed spermatozoa were seldom accompanied by these severely abnormal spermatozoa. The majority of megalohead spermatozoa were observed to have multiple tails, were predominant in the sample, and were used for ICSI. Ejaculated megalohead spermatozoa were used for ICSI in 15 cycles, while testicular spermatozoa were used in seven cycles where there were no vital spermatozoa or spermatozoa of low vitality in the ejaculate. The same abnormal morphology was observed in the testicles as in the ejaculated spermatozoa in the same males. Mean (+/- SD) low motility 4.7 +/- 5.6% and sperm count (3.8 +/- 4.19 x 10(6)) were common findings in these severely teratozoospermic patients. A low fertilization rate (43.2%) was achieved by using megalohead sperm forms (group I, n = 17) in comparison with the control group (60.2%) which had zero normal sperm morphology according to strict criteria (group II, n = 30) (P <0.01). Furthermore, a low pregnancy rate (9.1%) was obtained in the megalohead sperm group in comparison with the control group (40%) (P <0.05). Low fertilization and pregnancy rates may be due to a high incidence of chromosomal abnormalities from severely defective spermatozoa in the ejaculate. Couples should be counselled and warned about possible low fertilization and pregnancy rates with ICSI when only pinhead and megalohead forms with a high number of sperm heads without tails are present in the ejaculate.
The purpose of this study was to assess the usefulness of sonohysterography in the detection of abnormalities of the uterine cavity in infertile patients, compared with other diagnostic methods. Transvaginal ultrasonography, sonohysterography, hysterosalpingography and finally hysteroscopy were performed in 37 patients with primary and 25 patients with secondary infertility. Suspected uterine anomalies were also confirmed by laparoscopy. Transvaginal ultrasonography and hysterosalpingography were able to detect 36.3 and 72.7% of uterine pathologies respectively. Sonohysterography was able to detect all the anomalies except for a single endometrial polyp (90.3%). However, there was no significant difference between the diagnostic capabilities of these methods. We recommend the use of sonohysterography as an easy, cheap and noninvasive method for the diagnosis of intrauterine pathologies in infertile patients.
This study aimed at testing the hypothesis that lower uterine arterial (UA) Doppler indices are caused by increased uterine volume rather than the presence of myoma. Uterine volumes were calculated and uterine and/or myomal arterial pulsatility index (PI) and resistance index (RI) were obtained by transvaginal color Doppler ultrasonography. The mean uterine volume in the myomatous group (276.2 cm3; range 65-928 cm3, n = 100) was significantly greater than that of the control group (101.4 cm3; range 36-171 cm3; n = 60; p = 0.00). The mean UA PI and RI values in the study group were significantly lower than their corresponding values in the control group (0.77 +/- 0.08 and 1.69 +/- 0.47 vs. 0.82 +/- 0.06 and 1.97 +/- 0.49, respectively, p = 0.01). When the myomatous uterine volumes of the study group were categorized into two subgroups (< 200 and > or = 200 cm2) the UA PI and RI values were lower in the latter group (p = 0.006 and p = 0.015, respectively). However, after analysis of receiver-operator-characteristic curves, none of the UA Doppler indices could differentiate the myomatous uterus from the normal uterus.
The relationship between pulsatility index (PI) in the middle cerebral artery (MCA) and adverse perinatal outcome was studied in 162 normal and 75 high-risk pregnancies. The intrapartum cardiotocographic (CTG) findings, the mode of delivery, 1 and 5-minute Apgar scores, the pH level of the umbilical artery, admission to the neonatal intensive care unit (NICU) and the incidence of intrauterine fetal growth retardation were recorded. In the low risk group, the PI values in the MCA were only affected in growth retarded fetuses (P = 0.0084). In the high-risk group, there was an association between the MCA PI values and 5-minute Apgar scores (P = 0.0397), umbilical artery pH values (P = 0.0068) and development of IUGR (P = 0.0376). In both groups, an abnormal intrapartum CTG, the 1-minute Apgar score, cesarean section for fetal distress and admission to the NICU were not related to PI values in the MCA. Our present study suggests that Doppler flow measurement of MCA provides useful information about perinatal outcome, especially in the high-risk pregnancies.
One of the major signs of inflammation is a change in vascular flow and caliber. It is possible to detect these changes with the help of transvaginal color Doppler velocitometry. The purpose of this study was to evaluate the changes in pelvic circulation in cases with pelvic infection and to correlate these findings with other infectious parameters. The study group consisted of 20 cases who had the diagnosis of pelvic inflammatory disease (PID). Resistance index (RI) and pulsatility index (PI) were measured with transvaginal color Doppler ultrasonography in the uterine and ovarian arteries as well as at the tubouterine junction three times in a one-month period. At the same time the body temperature, erythrocyte sedimentation rate (ESR), C-reactive protein (CRP) and leukocyte counts were recorded. Infectious parameters declined to normal values, following a pattern parallel to clinical improvement from the first until day 30. Infectious parameters revealed significant differences between days 1-7, 1-30 and 7-30. On the other hand, low resistance in all three measurement points exhibited a rapid increase on the day 7 day and plateaued until the day 30 day. Color Doppler velocitometry measurements revealed significant differences between days 1-7 and 1-30 but not between days 7-30. These findings demonstrate that as the infection subsides, the changes in vascular flow return to normal before infectious parameters do. In conclusion, it is possible to detect decreased vascular resistance in acute infection with the help of transvaginal color Doppler ultrasonography. Furthermore, color Doppler ultrasonography can accurately detect regression of the infectious process before body temperature and acute phase reactants do.