Search PubMedSearch

Biomedical subjects

G Oreto

Publications and source records attributed to G Oreto.

At least 19 recordsLinked to original sources

Irregular ventricular tachycardia: a possible manifestation of longitudinal dissociation within the reentry pathway.

Sustained monomorphic ventricular tachycardia is usually regular; that is, it is associated with constant R-R intervals. In several cases, however, the cycles of ventricular tachycardia are more or less variable. Fifty-four cases of sustained monomorphic ventricular tachycardia were evaluated in order to assess whether tachycardia was regular. Nine cases were defined as irregular (i.e., the R-R cycles varied by more than 40 msec throughout a 1-minute recording). In five cases tachycardia was "regularly irregular," since the R-R cycles could be divided into two separate groups: the group of long cycles and that of short cycles. In these cases the variability manifested according to a defined and constant pattern: bigeminal pattern (alternation of short and long cycles), trigeminal pattern (two short cycles followed by a long cycle), and so on. The regular variability of tachycardia cycle length suggests one of the following possibilities. (1) There are two alternative circuits (a short circuit and a long circuit) that share the same exit pathway. Whenever the reciprocating impulse runs through the short circuit, the R-R cycle is short; but if a block in the short circuit occurs, the impulse runs through the long circuit, resulting in a long R-R cycle. (2) There is a longitudinal dissociation within the reentry circuit; two separate pathways with different inherent conduction velocities are present. When the impulse runs through the fast pathway, the R-R cycle is short; whereas when a block in the fast pathway occurs, the impulse traverses the slow pathway, resulting in a long R-R cycle.

Electrocardiography

Failure of parasystolic impulses to appear on schedule. Exit block due to concealed conduction of sinus impulses.

A 45-year-old patient free of any heart disease was admitted to the hospital with an electrocardiographic pattern of ventricular parasystole. The parasystolic rhythm was relatively fast, such that several consecutive ectopic complexes manifested. A later tracing reflected only isolated parasystolic complexes with long and fixed coupling intervals. The interectopic intervals, however, were once more in multiple of the parasystolic cycle as directly measured during the phases of undisturbed parasystolic rhythm. In the latter tracing, several scheduled parasystolic impulses did not yield a response, despite calculation suggesting that these impulses occurred outside the refractory period. In other words, an exit block was present. Analysis of the tracing suggests that the exit block was caused by concealed penetration of the sinus impulses into the ectopic-ventricular junction. That is, any sinus impulse penetrates into the junction and renders it refractory, in such a way that only parasystolic impulses that are relatively late within the sinus cycle may be conducted to the surrounding myocardium and result in a parasystolic complex.

Cardiac Complexes, Premature

Electrocardiographic changes associated with haematocrit variations.

The electrical resistivity of intracardiac blood is less than the resistivity of the surrounding tissues. This affects the transmission of cardiac forces to the body surface: the radial forces are enhanced, whereas the transmission of tangential forces is diminished (the Brody effect). Blood resistivity is directly related to haematocrit, hence, haematocrit changes are expected to affect the transmission of cardiac forces, resulting in changes in QRS complex voltage. To assess this hypothesis, a 12-lead electrocardiogram was recorded in 40 patients affected by thalassaemia before and after a transfusion of concentrated red cells. The voltage of each QRS component was carefully measured in every lead, and the sum of all R wave amplitudes (sigma R) was calculated. The post-transfusional electrocardiogram reflected a significant decrease in the R wave amplitude in every lead. sigma R also decreased, whereas S wave amplitude in lead V6 increased. A negative correlation between the ratio of haematocrit pre/post transfusion and that of the corresponding sigma R values was also observed (r = -0.434; P less than 0.01). An increase in haematocrit is therefore associated with a decrease in R wave amplitude. These findings explain why several patients with high haematocrit manifest relatively low voltage QRS complexes.

Adolescent

Supernormal conduction in the left bundle branch unmasked by the linking phenomenon.

This presentation reflects a case of phase-3 left bundle branch block (LBBB). Analysis reveals that relatively early QRS complexes are wide, whereas beats occurring later than a critical time are narrow. There are, however, two unexpected phenomena: (1) an overlap occurs between the range of R-R intervals resulting in normal intraventricular conduction and the range of R-R intervals resulting in LBBB pattern. Complexes that follow a wide beat are often wide although they are associated with relatively long R-R intervals, whereas complexes that follow a normal beat tend to be normal even after relatively short R-R cycles. This is due to concealed retrograde penetration of the bundle branch that is blocked in anterograde direction (the so-called linking phenomenon). (2) Some early supraventricular impulses, paradoxically, resulted in normal intraventricular conduction. The phenomenon is a manifestation of supernormal LBB conduction, and only occurs following a wide QRS complex associated with retrograde activation of the LBB. The linking phenomenon reveals or unmasks the supernormal phase of LBB conduction. Following a retrograde and delayed activation of the LBB, the refractory period of the bundle branch is postponed, in such a way that a supraventricular impulse is allowed to occur during the early phase of supernormal conduction.

Aged

Atrial parasystole and tachycardia. Modulation and automodulation of a parasystolic focus.

This report deals with a patient reflecting atrial parasystole and episodes of atrial tachycardia. The P' waves during tachycardia were identical to the parasystolic P' waves. Atrial parasystole was at times regular, as revealed by a precise mathematical relationship between the interectopic intervals, and on other occasions irregular. Irregularity was due to modulation, namely electrotonic influence exerted by the sinus impulses upon the parasystolic focus. Atrial tachycardia occurred only during the periods when atrial parasystole was modulated. Atrial tachycardia has been interpreted as due to automodulation, a situation where the propagated parasystolic impulse exerts an electrotonic influence on the ectopic focus itself, leading to a marked unexpected acceleration of the ensuing parasystolic discharge.

Aged

[Left ventricular false tendon: the most frequent cause of "innocent" murmur in childhood?].

BACKGROUND: The left ventricular false tendon (FT) is an anomalous fibrous or fibromuscular band stretching across the left ventricle. The false tendons extend from the septum to the left ventricular free wall or, more rarely, from the septum to a papillary muscle. The association between FT and innocent cardiac murmur has been pointed out. The aim of the present study was to assess the incidence of FTs in children with a murmur classified as innocent. METHODS: Two groups of subjects were selected. Group A consisted of 253 children with: 1) systolic ejection murmur; 2) normal electrocardiogram and 3) absence of clinical data suggesting cardiac disease. Group B consisted of 240 children clinically free of cardiac disease, and without any cardiac murmur. A FT was diagnosed by means of 2D echocardiogram whenever a linear band stretching across the left ventricular chamber was evident in at least two sections. RESULTS: One hundred and sixty-one children of group A (63.6%) reflected a left ventricular FT; only in 3 patients out of 161 the FT was associated with a small ventricular septal defect, whereas in 158 children the FT was the only abnormal finding. A normal echocardiogram was observed in 71 children (28.1%) of group A; whereas in 21 patients (8.3%) a congenital heart disease was diagnosed. In group B, only 33 subjects (13.8%) had a FT. The different incidence of FT in the two groups (63.6% versus 13.8%) was statistically significant (p less than 0.01). CONCLUSIONS: The study shows that about two thirds of children with innocent heart murmur reflect a left ventricular FT. Furthermore, FT is far more common in subjects with innocent cardiac murmur than in normal subjects. The relationship between FT and murmur thus appears very likely, although not definitely proven.

Adolescent

Sinus parasystole.

Sinus parasystole is the expression of a protected nondominant sinus pacemaker, which is totally independent of the dominant rhythm. Two forms of sinus parasystole are described: (1) an active form, where both the dominant and the parasystolic pacemakers are located within the sinus node and (2) a passive form, where the basic rhythm is ectopic and the sinus pacemaker is protected as a result of complete retrograde SA block. Three cases of sinus parasystole are analyzed. In the active form of the arrhythmia the parasystolic sinus P waves are identical to those of the basic sinus rhythm. The diagnosis is suggested by variably coupled premature sinus P waves occurring with mathematically related intervals. This relationship between the parasystolic intervals can not be precise whenever complicating factors such as modulation occur. The recognition of active sinus parasystole is difficult, since the parasystolic P waves do not differ from basic P waves, so that the pattern resembles that of sinus arrhythmia or sinus extrasystoles. The passive form of sinus parasystole is more easily recognized due to the clear-cut difference between the dominant ectopic atrial waves and the "parasystolic" sinus P waves, which manifest with variable coupling intervals and reflect mathematically related intervals in between.

Adult

Pseudo pre-excitation with concertina effect in idioventricular tachycardia.

The concertina effect is a phenomenon where the QRS complexes reflect alternating phases of gradual widening and narrowing. This is most commonly due to ventricular pre-excitation, and the changes in QRS morphology are due to variability of the ventricular zone that undergoes pre-excitation. This presentation reflects a case where the concertina effect is due to an idioventricular tachycardia at a rate nearly identical to the sinus rate. Variable degrees of ventricular fusion therefore occur, and the concertina effect ensues, in relation to slight variations of the sinus cycle.

Electrocardiography

Ventricular extrasystoles masquerading as aberrantly conducted atrial extrasystoles because of postectopic T wave change.

This presentation reflects a case where broad and bizarre premature QRS complexes are preceded by sinus beats whose T wave is "abnormal," and seems to contain a premature P wave. A diagnosis of atrial extrasystoles with aberrancy thus could be entertained. The extrasystoles, however, are ventricular in origin. The pattern is explained on the basis of postectopic T wave change, that is, the change in configuration of the T wave that occurs in the sinus beat after an extrasystole.

Cardiac Complexes, Premature

[A-V conduction in atrial fibrillation and flutter].

The assessment of A-V conduction in the presence of atrial fibrillation is based upon analysis of the R-R intervals. This is because in atrial fibrillation it is impossible both to identify the impulse that has been conducted to the ventricles, and to measure the A-V conduction time. The first step is, therefore, to evaluate whether the QRS complexes are the expression of conducted atrial impulses, or they are A-V junctional or ventricular in origin. In other words, it is necessary to distinguish between A-V conduction and A-V dissociation. Conduction in atrial fibrillation commonly results in irregular R-R cycles, whereas in the presence of dissociation the R-R cycles are mainly regular. This differentiation can be difficult in the presence of: aberrant conduction; A-V conduction disturbances; or A-V junctional tachycardia with anterograde 2nd degree exit block. The problem occurs both with tachycardia-dependent (or phase 3), and with bradycardia-dependent (or phase 4) aberrant conduction. Distinction between aberration and ectopy is helped by: the sequence long cycle-short cycle; the pause that follows the wide QRS complex; the configuration of the wide QRS complex. Since aberrant conduction may be sustained, due to the linking phenomenon, the pattern may mimick ventricular tachycardia. In atrial flutter the atrial electrical activity is far less chaotic than in atrial fibrillation, so that assessment of A-V conduction is less difficult. Nevertheless, it is impossible to determine exactly which out of the atrial impulses has been conducted, due to the extremely fast atrial rate: the conducted impulse, indeed, is not always the one that immediately precedes the QRS complex. Furthermore, it is also difficult to measure the A-V conduction time, because the F waves follow to each other without any interruption, so that it is impossible to define exactly the beginning of atrial activation. In atrial flutter, thus, as well as in atrial fibrillation, A-V conduction may be assessed by analysis of the R-R intervals, apart from measurement of F-R intervals. In the absence of drugs, atrial flutter is usually associated with 2:1 (or, less frequently, 4:1) conduction ratio, being the odd ratios (3:1, 5:1) far more rare. Due to concealed penetration of non-conducted impulses, A-V conduction intervals are often variable, so that the R-R cycles are irregular even in the presence of a constant A-V conduction ratio. The most common mechanisms leading to irregularity are the alternation of A-V conduction times, and the alternating Wenckebach phenomenon.(ABSTRACT TRUNCATED AT 400 WORDS)

Atrial Fibrillation

[Electrocardiographic diagnosis of ventricular tachycardia in patients with previous myocardial infarct: frequency and significance of diverse diagnostic criteria].

Electrocardiographic tracings of ventricular tachycardia were recorded from 34 patients with old myocardial infarction. The diagnostic criteria of ventricular tachycardia were carefully assessed in each tracing. The most commonly observed signs were: 1) QRS duration greater than 140 msec; 2) a prevalent negative deflection in Lead V6; 3) an interval from the beginning of the QRS complex to the S wave nadir greater than 100 msec in at least one precordial lead. The cases were subdivided into two groups on the basis of a predominant positive or negative deflection in Lead V1 (Group 1 and 2, respectively). The most common signs in Group 1 were a monophasic R wave configuration of the QRS complex in Lead V1, and a QS configuration in Lead V6. On the other hand, the most frequent criteria in Group 2 were an interval between the beginning of the QRS complex and the S wave nadir greater than 60 msec in Lead V1, and a QS configuration in Lead V6. Furthermore, none of the cases reflected a normal frontal plane QRS axis, but an axis deviation was evident in all 29 cases where axis could be calculated.

Diagnosis, Differential

Longitudinal dissociation within the reentry pathway of ventricular tachycardia.

Two cases of nonsustained, repetitive ventricular tachycardia are analyzed. In both, the episodes of tachycardia do not contain random numbers of beats, but the complexes in each phase of tachycardia are either always in even numbers (case 1) or always in odd numbers (case 2). This indicates longitudinal dissociation within the reentry circuit: i.e., there are two functionally separate pathways in some part of the reentry circuit, and the reciprocating impulse runs alternatively through the two pathways. Tachycardia ends due to block of the impulse always in the same pathway, thus, the number of beats in each episode of tachycardia is always either in odd or even numbers.

Aged