Urinary Fractional Clearance of Sodium in 8 Healthy Beagle Dogs Fed Normal, Low, or Ultralow Sodium Diets

The purpose of this study was to investigate in healthy adult dogs if there was a daily fluctuation in the FCNa, the role that dietary sodium intake played on the FCNa, and the role that feeding played on the obtained value for FCNa. Three different diets were used in a group of 8 healthy beagle dogs in a crossover design. The sodium content of the diets was normal (0.26%), low (0.18%), and ultralow (0.06%). Spot urine and blood samples were collected from which the urine and serum sodium and creatinine concentration were determined, and the FCNa was calculated. The median FCNa for the normal, low, and ultralow sodium diets was 0.5, 0.77, and 0.15, respectively. Individual dogs showed a daily variation in FCNa, and samples which were collected shortly after eating showed the greatest variation. This study showed that in a group of healthy beagle dogs without obvious renal disease, the FCNa could exceed 1 and that there was both an individual and daily variation in the FCNa. The greatest variation was seen whilst the dogs were fed the low and ultralow sodium diets and when the samples were collected shortly after eating. This study concluded that an FCNa > 1% may not be indicative of acute tubular dysfunction in young dogs, and use of the FCNa for assessing renal function in clinical cases should take into account the animal's diet, as well as the time the samples were taken in relation to feeding.


Introduction
Fractional clearance is defined as the fraction of the filtered solute that is not reclaimed as it passes through the renal tubular system. In order for the body homeostasis to be maintained, dietary intake needs to be matched by its excretion [1].
In order to maintain a stable plasma composition, the renal tubules either selectively reabsorb filtrate components or they secrete solutes delivered to them by the peritubular circulation [1]. e majority of extracellular sodium is actively reabsorbed in the proximal convoluted tubules [1]. Furthermore, sodium reabsorption takes place in the distal convoluted tubules secondary to active reabsorption of chloride ions and in the collecting ducts, the latter being controlled by the aldosterone [2].
Acute kidney injury (AKI) is a syndrome that is characterized by the sudden onset of impaired renal function resulting in azotaemia, increased fractional clearance of sodium (FC Na ), and the presence of renal tubular epithelial cells and/or casts in the urine sediment [3][4][5][6]. Fractional excretion of electrolytes has been recently reevaluated in dogs with AKI as a readily available and cost-effective marker of tubular damage and kidney function [3,5]. FC Na was used as an early and accurate predictor of AKI in a population of dogs with naturally occurring heatstroke despite fluid resuscitation [5]. Although it is generally accepted that a FC Na > 1% is indicative of acute tubular dysfunction [4], an incidental finding in two studies showed that healthy young dogs often had a FC Na > 1% in the absence of obvious signs of renal dysfunction [7,8]. Another study showed that FC Na was not different between volume-responsive AKI and control dogs [6]. ese studies attest to the paucity of data in the veterinary literature and the lack of inclusion of healthy control dogs.
It is possible that an FC Na > 1% may not always be indicative of acute tubular dysfunction and that values of this magnitude could merely reflect an increased salt intake by the animal. In addition, the FC Na can also be influenced by the administration of sodium-containing fluids, which can increase the FC Na and may negate the usefulness in using FC Na as a diagnostic test [3,5].
Feeding has been shown to affect the quantity of sodium that is excreted in the urine of clinically healthy dogs [9]. However, none of the dogs in that study showed an FC Na > 1%. In one study in dogs with chronic kidney disease (CKD), the FC Na was proportional to the dietary sodium intake [10]. In that study, 3 of the diets were high in sodium (1.17%, 0.95%, and 0.58%) and 1 had a normal content (0.25%) and all dogs had an FC Na < 1%. Another study showed that the FC Na was higher in dogs with CKD compared to healthy dogs [11]. In the same study, healthy dogs fed either a normal (0.23%) or high-sodium (0.41%) diet did not have an FC Na > 1% [11]. It has been alluded that prior to determining the fractional clearance of electrolytes, dogs should be fed a consistent diet for approximately 1 week before submission of samples [4].
Although urine collection over a 24-hour period is most accurate for determining the fractional clearance of electrolytes, spot samples of simultaneously collected urine and plasma provide clinically reasonable approximations of total daily excretion despite some variability [4]. Correlation has been shown between spot and 24-hour collection determinations [12,13]. e purpose of this study was to investigate if there was a daily fluctuation in the FC Na , the role that dietary sodium intake plays on the FC Na , the role that feeding plays on the obtained value for FC Na , and whether or not the time of sample collection in relation to feeding can influence FC Na .
e main hypothesis of the study was that an elevated FC Na may not be indicative of acute tubular dysfunction if the animal was fed a high-sodium diet.

Animals. Eight beagles (3 males and 5 females) from
the Onderstepoort Animal Teaching Unit were used in the study. Seven of the dogs were 6 years of age and one 4 years. Prior to the study, all the dogs were screened for preexisting renal disease by means of full urine analysis and serum biochemistry (urea, creatinine, calcium, phosphate, sodium, and potassium). Fractional clearance of sodium was also determined in all dogs. e dogs were kept in an appropriate animal management facility, and the study was approved by the Animal Research and Ethic Committee of the Faculty of Veterinary Science, University of Pretoria. e physical and biochemical examinations performed before the study confirmed that all dogs were healthy.  ere was a significant difference between the 3 groups (p < 0.05).

Normal
Low Ultra

Experimental Procedures.
e effect of 3 diets on fractional excretion of sodium was assessed: diet 1 had a normal sodium content (Hills adult maintenance ® , 0.26% sodium), diet 2 moderately reduced (Hills k/d ® , 0.18% sodium), and diet 3 severely reduced (Hills h/d ® , 0.06% sodium). All dogs and diets were used in a crossover study with a 2-week period being allowed for acclimatisation of the new diet before the samples were collected.

Data Collection.
e dogs were housed in their normal environment, fed twice a day, and had access to ad-lib water. e sodium content in the dogs' drinking water was quantified to be less than 10 mg/l. During the first 2 weeks, no samples were collected from the animals. From the third week onwards, blood and urine samples were collected daily. In the third week, samples were collected after the animals had been fasted for approximately 12-14 hours and in the fourth week samples were collected approximately 2-3 hours after eating. All samples were collected at approximately 10.00 am. Serum and urine creatinine were determined on a Technicon RA 1000 system (Technicon Instruments Corporation, Tarrytown, USA). Serum and urine sodium were determined using an ion selective analyzer (Rapidlab ™ 348 pH/Blood gas analyzer, Chiron Diagnostics, Essex, UK). e fractional clearance of sodium was calculated using the following formula: urine sodium(mmol/l) serumsodium(mmol/l) × serumcreatinine(μmmol/l) urine creatinine(μmmol/l) × 100. (1)

Statistical Analysis.
Data were tabulated in a spreadsheet program (Excel, Microsoft Corporation, USA). Statistical analysis was performed with the aid of a statistical software package (Sigma Stat, Jandal Corporation, USA), and the generated data were graphically depicted with the aid of a graphic software package (Sigma Plot, Jandal Corporation, USA). Descriptive statistics were used to describe the data with the Kruskal-Wallis one-way analysis of variance on ranks, and the Wilcoxon signed rank test was used to test the statistical difference between groups. e level of significance was set at p < 0.05.

Results
e results are tabulated in Table 1 and graphically depicted in Figures 1-3. Median FC Na for the normal, low, and ultralow sodium diets was 0.5, 0.77, and 0.15, respectively, in which there was a statistical difference between the 3 groups. e FC Na range for the 3 groups was 0 to 8.57. Urine sodium values mirrored the FC Na results and in that there was a statistical difference between all 3 groups.
ere was no statistical difference with the serum sodium values between the 3 groups.
Individual dogs showed a daily variation in FC Na, and samples collected shortly after eating showed the greatest variation.

Discussion
is study showed that in a group of healthy adult beagle dogs with no evidence of renal dysfunction, FC Na could exceed a value of 1% and that there was both an individual and daily variation. e greatest variation was seen whilst the dogs were fed the low and ultralow sodium diets, but some dogs on the normal sodium diet had sporadic FC Na values > 1%. is finding of an FC Na > 1% supports the incidental observation noted in two other studies that healthy young dogs can have FC Na values > 1% with no obvious renal injury [7,8].
is study showed that if samples were collected after food had been withheld for a period of time (12-14 hours),  Veterinary Medicine International there was a tendency for the FC Na to be less than 1% although there was an individual variation. is finding is in agreement with a previous study that showed that in healthy beagle dogs where food was withheld had a significant decrease in urinary excretion of sodium [2]. e dogs in that study were fed a reduced sodium diet (0.18%). is finding can be expected as the kidneys primarily eliminate sodium.
In another study in dogs that were fed a normal (0.23%) and a high-sodium (0.41%) diet, FC Na never exceeded 1% [11]. In this current study, individual dogs fed either the low (0.18%) or ultralow (0.06%) sodium diet had sporadic FC Na > 1% although the median values for all 3 diets were <1%.
e highest value recorded for the FC Na with the normal, low, or ultralow sodium diets, where 2.69, 8.57, and 5.32, respectively.
is study utilised a spot urine sample to determine the FC Na , which can be influenced by the circadian variation in the urinary excretion of sodium [11], which was evident in this study by both daily and individual variation. Previous studies have shown correlation between spot and 24-hour collection determinations of FC Na [12,13]. In a clinical setting, the spot test is more practical than the other 2 collection methods.
is study concluded that an FC Na > 1% may not be indicative of acute tubular dysfunction in young dogs, and use of the FC Na for assessing renal function in clinical cases should take into account the animal's diet as well as the time the samples were taken in relation to feeding.

Data Availability
e raw data used to support the findings of this study are available from the corresponding author upon request.

Conflicts of Interest
e author declares that there are no conflicts of interest.