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K Jaatinen

Publications and source records attributed to K Jaatinen.

4 recordsLinked to original sources

Methane-oxidizing bacteria in a Finnish raised mire complex: effects of site fertility and drainage.

Methane-oxidizing bacteria (MOB) are the only biological sinks for methane (CH4). Drainage of peatlands is known to decrease overall CH4 emission, but the effect on MOB is unknown. The objective of this work was to characterize the MOB community and activity in two ecohydrologically different pristine peatland ecosystems, a fen and a bog, and their counterparts that were drained in 1961. Oligotrophic fens are groundwater-fed peatlands, but ombrotrophic bogs receive additional water and nutrients only from rainwater. The sites were sampled in August 2003 down to 10 cm below the water table (WT), and cores were divided into 10-cm subsamples. CH4 oxidation was measured by gas chromatography (GC) to characterize MOB activity. The MOB community structure was characterized by polymerase chain reaction-denaturing gradient gel electrophoresis (DGGE) and sequencing methods using partial pmoA and mmoX genes. The highest CH4 oxidation rates were measured from the subsamples 20-30 and 30-40 cm above WT at the pristine oligotrophic fen (12.7 and 10.5 micromol CH4 dm-3 h-1, respectively), but the rates decreased to almost zero in the vicinity of WT. In the pristine ombrotrophic bog, the highest oxidation rate at 0-10 cm was lower than in the fen (8.10 micromol CH4 dm-3 h-1), but in contrast to the fen, oxidation rates of 4.5 micromol CH4 dm-3 h-1 were observed at WT and 10 cm below WT. Drainage reduced the CH4 oxidation rates to maximum values of 1.67 and 5.77 micromol CH4 dm-3 h-1 at 30-40 and 20-30 cm of the fen and bog site, respectively. From the total of 13 pmoA-derived DGGE bands found in the study, 11, 3, 6, and 2 were observed in the pristine fen and bog and their drained counterparts, respectively. According to the nonmetric multidimensional scaling of the DGGE banding pattern, the MOB community of the pristine fen differed from the other sites. The majority of partial pmoA sequences belonged to type I MOB, whereas the partial mmoX bands that were observed only in the bog sites formed a distinct group relating more to type II MOB. This study indicates that fen and bog ecosystems differ in MOB activity and community structure, and both these factors are affected by drainage.

Bacteria↗

Simulations for inverse radiation therapy treatment planning using a dynamic MLC algorithm.

The inverse radiation treatment planning model for a dynamic multileaf collimator (MLC) is used to find the optimal solution of planning problem. The model for dynamic MLC is explained in Tervo et al (2003 Appl. Math. Comput. 135 227-50). The advantage of this model is that it optimizes leaf velocity parameters directly. Our algorithm uses a gradient-based local optimization method. Two patient cases, prostate carcinoma and tonsilla carcinoma, are studied. Field arrangements are pre-selected and velocity parameters for MLC leaves are optimized to obtain the prescribed dose in the patient space. In both simulated cases, high dose distribution conforms the planning target volume well and organs-at-risk are saved in most parts. Simulations show that the model has its functionality in patient treatments, although it is still formal and needs further development.

Algorithms↗

A novel method of scatter correction using a single isotope for simultaneous emission and transmission data.

Photon attenuation and scatter are the most important factors degrading the quantitative accuracy of single photon emission tomography (SPET). Simultaneous SPET and transmission tomographic (TT) scans with dual isotopes have been reported to correct attenuation and scatter. However, there is cross-contamination of different energies (scatter from emission data to transmission data and from transmission data to emission data). A method has been proposed to acquire emission (functional) and transmission (structural) data simultaneously with a single isotope scan. A 99Tcm transmission line source at the focal distance is attached to the rotating drum plate of a triple-headed gamma camera equipped with fan-beam collimators. The transmission source has the same energy spectrum as the emission source because 99Tcm is also used for SPET. The triple-headed SPET system allows the transmission and emission data to be acquired by one detector (D1), while the other two detectors (D2, D3) simultaneously acquire emission data. The transmission data can be calculated by subtracting D2 (D3) from D1 after correction for time-decay. A transmission-dependent method for scatter correction was implemented with the transmission and emission data. In principle, there is no energy cross-contamination using 99Tcm as the transmission-emission source. The results of scatter correction demonstrate a clear improvement in spatial resolution. The contrasts were increased for different sized 'hot' regions both in SPET and brain phantoms. The results indicate that the proposed method can overcome the difficulty associated with simultaneous dual-isotope acquisition. They further support the feasibility of simultaneous SPET and TT scanning using a single isotope.

Basal Ganglia↗

Components op the flood-field uniformity index in a gamma camera.

The flood-field uniformity index has been investigated as a function of the total number of counts and the image matrix size. The analysis showed the dependence of the NEMA integral uniformity index on the counting statistics. A linear model to determine the noise-free component of the uniformity index that was applied successfully to the experimental data is presented. In addition, the heterogeneity of the integral uniformity index IU presented as a function of image matrix size m fits well to the fractal equation IU(m)/IU(1) = mD-1 with the fractal dimension D = 1.34. This result shows that the uniformity index could be handled as a fractal quantity.

Gamma Cameras↗