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1    Cerebral blood flow was measured by laser flowmetry.
2 ts, including thermography and laser Doppler flowmetry.
3 ne, and spleen was assessed by laser Doppler flowmetry.
4 e head using confocal scanning laser Doppler flowmetry.
5 ) blood flow, as determined by laser Doppler flowmetry.
6 istribution were measured with laser doppler flowmetry.
7 lar blood flow was assessed by laser Doppler flowmetry.
8  blood flow was measured using laser Doppler flowmetry.
9 nsisted of measurements with transit-time US flowmetry.
10 s measured during manometry by laser Doppler flowmetry.
11  Doppler perfusion imaging and laser Doppler flowmetry.
12 crocirculation was assessed by laser Doppler flowmetry.
13 n blood flow was measured with laser Doppler flowmetry.
14 od flow (rCBF) was recorded by laser Doppler flowmetry.
15 d flow monitored in vivo using laser Doppler flowmetry.
16 d larger perfusion deficits on laser speckle flowmetry.
17 ood flow measured using transcranial Doppler flowmetry.
18 ted using signal averaged laser Doppler (LD) flowmetry.
19 d flow (rCBF) was monitored by Laser-Doppler flowmetry.
20 aseline and then annually with laser Doppler flowmetry.
21 as determined with correlative laser Doppler flowmetry.
22 in blood flow was monitored by laser-Doppler flowmetry.
23  was separately assessed using laser Doppler flowmetry.
24 itored in anesthetized mice by laser-Doppler flowmetry.
25  flow (HBF) was measured using laser Doppler flowmetry.
26 d flow (CuBF) were recorded by laser Doppler flowmetry.
27 were measured by catheterization and Doppler flowmetry.
28 nd reperfusion was assessed by laser Doppler flowmetry.
29  pressure, skin blood flow via laser-Doppler flowmetry and core temperature via ingestible telemetric
30 ulation obtained from standard laser-Doppler flowmetry and indices derived from near-infrared spectro
31 ral perfusion was monitored by laser-Doppler flowmetry and infarct volume was measured.
32 ations for non-invasive diagnosis, analysis, flowmetry and inspection.
33 s thereafter are included: (a) laser-Doppler flowmetry and intravital microscopy to evaluate mesenter
34 ecovery that resembled microbead-based blood flowmetry and laser Doppler blood spectroscopy.
35 n amplitude were assessed with laser Doppler flowmetry and laser interferometry, respectively.
36 on monitoring was performed by laser Doppler flowmetry and lectin-binding assay.
37 hoton imaging with laser Doppler and speckle flowmetry and magnetic resonance imaging, we show that C
38 od flow using a combination of laser Doppler flowmetry and MRI were performed to uncover the effects
39 bral oligemia, we used in vivo laser speckle flowmetry and multimodal imaging.
40 e; CBF was monitored with both laser Doppler flowmetry and radioactive microspheres, whereas intracra
41 enectomy with a combination of laser Doppler flowmetry and reflectance spectrophotometry.
42 onal cerebral blood flow using laser Doppler flowmetry and specific gravity, an indicator of brain ed
43 periments, CBF was measured by laser Doppler flowmetry and the cerebral vasculature was visualized by
44 the chamber was monitored with laser Doppler flowmetry and the disappearance of the tracer versus tim
45 tion were demonstrated between laser Doppler flowmetry and the two CT perfusion approaches (single-se
46 ortical blood flow (CBF) using laser Doppler flowmetry and tissue PO2 using fluorescent decay.
47                                              Flowmetry and ultrasonography were used perioperatively
48 io of forearm skin blood flux (laser-Doppler flowmetry) and arterial blood pressure (Finapres) was us
49  well as interspace perfusion (laser Doppler flowmetry) and hematocrit were analyzed.
50 heat-induced skin %-hyperemia (laser-Doppler flowmetry), and glucose metabolism status (oral glucose
51 estoration of blood perfusion (laser Doppler flowmetry), and muscle repair (Evans blue dye exclusion)
52  continuous cardiac output (pulmonary artery flowmetry), and systemic and intracardial pressure measu
53 ll (RBC) flux was measured via laser-Doppler flowmetry, and cutaneous vascular conductance (CVC) was
54  cell flux was monitored using laser-Doppler flowmetry, and cutaneous vascular conductance (CVC) was
55 kin blood flow was measured by laser-Doppler flowmetry, and CVC was the ratio of skin blood flow to m
56 gnal imaging and spectroscopy, laser Doppler flowmetry, and local field potential recordings.
57 t imaging of perfused vessels, laser Doppler flowmetry, and MRI) as well as a sustained reduction in
58 rdings, cerebral blood flow by laser Doppler flowmetry, and oxygen consumption with measurement of th
59  glass microelectrodes, CBF by laser Doppler flowmetry, and tissue oxygen tension (tpO(2)) using pola
60   Vital signs, pulse oximetry, laser Doppler flowmetry, and toe temperature were measured to evaluate
61 r blood flow was measured with laser Doppler flowmetry, and, simultaneously, the disappearance of the
62                                Laser Doppler flowmetry appears to be a useful tool for continuous, on
63 lood cell flux was measured by laser Doppler flowmetry at each fibre site during local heating (T(loc
64 hanges in CBF were measured by laser doppler flowmetry before (baseline), and during hypercapnia (FiC
65 oglobin concentration rHb) and laser Doppler flowmetry (blood flow and flow velocity).
66                       By using laser Doppler flowmetry, blood flow from the anterior choroid in pento
67 ulation of RVLM elevated rCBF (laser-Doppler flowmetry) by 31 +/- 6 %, reduced cerebrovascular resist
68 lly elevated rCBF1 measured by laser Doppler flowmetry, by 61.3 +/- 22.1% (P < 0.01), increased arter
69 ng local skin warming, we used laser Doppler flowmetry combined with intradermal microdialysis to mea
70                                Laser Doppler flowmetry, combined with intradermal microdialysis of l-
71                                Laser speckle flowmetry consistently showed a reduction in tissue perf
72 al arterioles, consistent with laser Doppler flowmetry data.
73 ortical blood flow measured by laser-Doppler flowmetry, demonstrating the importance of Ca(2+) channe
74 erg Retinal Flowmeter (HRF), a laser Doppler flowmetry device, has captured interest as a research an
75                              Diffuse optical flowmetry (DOF) assesses deep tissue RBC dynamics by mea
76 lux in the affected dermatome (laser Doppler flowmetry; dorsum of foot) were measured during whole-bo
77 eurography) and red cell flux (laser Doppler flowmetry; dorsum of foot) were measured during whole-bo
78  conductance (%CVC(max) ) with laser Doppler flowmetry during low dose intradermal microdialysis ET-1
79 llary blood flows, measured by laser-Doppler flowmetry, exhibited high autoregulatory efficiency over
80                                Laser Doppler flowmetry generates comparable results to wheal area mea
81                                Laser Doppler flowmetry identified an increase in blood flow in the CS
82 sured on a continuous basis using ultrasonic flowmetry in anesthetized cats.
83 were measured transclerally by laser Doppler flowmetry in anesthetized pigeons before and after admin
84 lood flow was also measured by laser Doppler flowmetry in each of the digits prior to intradermal inj
85                                Laser Doppler flowmetry in LPS-pretreated rats suggested that limiting
86 ction noninvasively by forearm laser Doppler flowmetry in several small trials.
87 graphy recordings and CBF with laser Doppler flowmetry in the rat's somatosensory cortex for both res
88 eurography) and red cell flux (laser-Doppler flowmetry) in the innervated dermatome (dorsum of foot)
89                                Laser Doppler flowmetry indicated that blood flow returned rapidly to
90  video angiography, fluorescein angiography, flowmetry, intraoperative angiography, and direct angiog
91                    In summary, laser Doppler flowmetry is a useful measure of continuous relative cha
92 bral perfusion, estimated with laser Doppler flowmetry (LD-CBF), in response to intravenous oxotremor
93 d cell flux was measured using laser-Doppler flowmetry (LDF) and cutaneous vascular conductance (CVC;
94 (CBF) was measured by means of laser Doppler flowmetry (LDF) and perfusion weighted imaging (PWI) bef
95 we performed experiments using laser-Doppler flowmetry (LDF) combined with iontophoresis in 15 low-fl
96 re recorded continuously using laser Doppler flowmetry (LDF) during and 30 min after 6 min of forebra
97 dy was to evaluate the role of laser Doppler flowmetry (LDF) in comparison with infrared thermography
98 ic resonance imaging (MRI) and laser Doppler flowmetry (LDF) over the course of amyloid-B deposition.
99 sualization of infused RBCs or laser Doppler flowmetry (LDF) to measure RBC flow.
100 LD signal and blood flow using laser Doppler flowmetry (LDF) was studied in rats in response to apnea
101                                Laser-Doppler flowmetry (LDF) was used as an index of skin blood flow
102 monitored at three sites using laser Doppler flowmetry (LDF) while mean skin temperature was lowered
103 lood perfusion was measured by laser Doppler flowmetry (LDF).
104 erage gingival augmentation by laser Doppler flowmetry (LDF).
105 ood flow were quantified using Laser-Doppler flowmetry (LDF).
106 ollowing tooth brushing, using laser Doppler flowmetry (LDF).
107 lood flow increase measured by laser Doppler flowmetry (LDF).
108 er each microdialysis site via laser-Doppler flowmetry (LDF).
109 d flow (SkBF) was monitored by laser-Doppler flowmetry (LDF).
110  was continuously monitored by laser Doppler flowmetry (LDF).
111 ood pressure, skin blood flow (laser-Doppler flowmetry), local sweat rate and SSNA (microneurography
112 ctance (CVC) was calculated as laser-Doppler flowmetry/mean arterial pressure and normalized to maxim
113 e-unit recording combined with laser-Doppler flowmetry measurements of dural blood flow (DBF), we exa
114 -2 inhibitor) before repeating laser Doppler flowmetry measurements.
115 h methods were correlated with laser Doppler flowmetry measurements.
116  blood flow during ischemia by laser speckle flowmetry methods.
117 copically, gastric blood flow (GBF) by laser flowmetry, mRNA level of HIF-1alpha, GPx, SOD1, SOD2, an
118 ood flow (CBF) was measured by laser Doppler flowmetry or by the (14)C-iodoantipyrine technique with
119 lood cell flux was measured by laser-Doppler flowmetry over each microdialysis site.
120  Red cell flux was measured by laser-Doppler flowmetry over each site.
121 ral perfusion was monitored by laser-Doppler flowmetry over ipsilateral parietal cortex to ensure ade
122 n blood flow was monitored via laser-Doppler flowmetry over sites following local administration of t
123 o baseline CBF--as measured by laser Doppler flowmetry over the somatosensory cortex.
124                          Using laser Doppler flowmetry, oxygen microsensors and intrinsic optical ima
125 ble with time-domain processing than with US flowmetry (P < .001).
126  approximately 145 days) using laser Doppler flowmetry probes implanted in the parietal cortices.
127 rode, used simultaneously with laser doppler flowmetry, real-time data acquisition, and continuous br
128  measuring (by electromagnetic or ultrasonic flowmetry) renal blood flow responses to AngII in rats a
129 d by laser speckle imaging and laser Doppler flowmetry, respectively.
130  scanning laser tomography and laser Doppler flowmetry, respectively.
131                                   Ultrasonic flowmetry seems to be a useful tool for continuous on-li
132 odermal blood flow measured by laser Doppler flowmetry significantly increased after application of G
133 ken to compare microsphere and laser Doppler flowmetry techniques for the measurement of cerebral blo
134                          Using laser speckle flowmetry through an intact skull, we studied the impact
135                        We used laser Doppler flowmetry to determine whether pretreatment with low-dos
136 e aim of this study was to use laser Doppler flowmetry to measure anterior choroidal blood flow in th
137                          Using laser Doppler flowmetry to measure cerebral blood flow during graded a
138 ll (RBC) flux was measured via laser-Doppler flowmetry to provide an index of skin blood flow.
139 ectral reflectance imaging and laser speckle flowmetry to simultaneously and non-invasively determine
140 rs, two anesthetic regimes and laser-Doppler flowmetry to test the hypothesis that NO is critically i
141  so with time-domain processing than with US flowmetry (underestimation, 10% versus 21%).
142                                              Flowmetry, wall strain analyses, biomicroscopy, and hist
143 e increase of flow measured by laser Doppler flowmetry was less than that measured by spheres after 1
144                                Laser Doppler flowmetry was used to assess cutaneous blood flow change
145                                Laser Doppler flowmetry was used to assess relative choroidal blood ve
146                                Laser Doppler flowmetry was used to assess relative foveolar choroidal
147                                Laser Doppler flowmetry was used to determine optic nerve head relativ
148 yhemoglobin in capillaries and laser Doppler flowmetry was used to measure blood flow.
149                           Laser Doppler (LD) flowmetry was used to measure CBF changes (LD(CBF)) in t
150                    Transcleral laser Doppler flowmetry was used to measure ChBF during spontaneous BP
151                      In a rat model, Doppler flowmetry was used to measure local blood flow at the si
152                                Laser Doppler flowmetry was used to measure red blood cell flux during
153                                Laser-Doppler flowmetry was used to measure red blood cell flux.
154                                Laser-Doppler flowmetry was used to measure skin blood flow in a total
155                                Laser Doppler flowmetry was used to quantify changes in blood flow, wh
156 epatic blood flow (assessed by laser Doppler flowmetry) was greater in LSF-treated rats.
157           Red blood cell flux (laser Doppler flowmetry) was measured during graded intradermal microd
158                          Using Laser Doppler flowmetry, we showed that SNO-Hb infusion to animals bre
159 raphic activity (EEG) and CBF (laser-Doppler flowmetry), were exposed to 100% O2 at 4 or 5 atm (gauge
160 lood flow (RBF), measured with laser Doppler flowmetry, were 58+/-9%.
161 ese findings were supported by laser Doppler flowmetry which determined FR139317 induces reperfusion
162 at two forearm sites with laser Doppler (LD) flowmetry while local skin temperature was cooled and cl
163 dal blood flow was measured by laser Doppler flowmetry with a probe positioned over the posterior ret
164 esolution echocardiography and laser Doppler flowmetry with behavioural observation revealed a range
165 alysis electrode technique and laser doppler flowmetry with brain temperature controlled.

 
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