Showing posts with label nephrolithiasis. Show all posts
Showing posts with label nephrolithiasis. Show all posts

Don't Eat the Leaves

Hyperoxaluria is an important risk factor for kidney stones, approximately 80% of which are primarily composed of calcium oxalate. Hyperoxaluria is typically diagnosed by performing a 24 hour urine collection and levels above 45 mg/day are considered abnormal although, depending on the other urine constituents, the risk of CaOx stones increases when the urinary oxalate level is above 20 mg/dl. It is important to distinguish between hyperoxaluria that results from increased oxalate production (endogenous) and increased oxalate ingestion (enteric).

The classic disease associated with increased oxalate production is primary hyperoxaluria. There are 3 identified types although all result from defects in glycoxylate metabolism leading to oxalate accumulation. At first, the manifestations are primarily renal leading to nephrolithiasis and nephrocalcinosis. However, as the disease progresses,  the serum oxalate concentration increases eventually resulting in extra-renal oxalate deposition. Vitamin C is metabolized to oxalate also so that patients with oxalate-containing kidney stones should probably avoid excess vitamin C supplementation as this could increase the risk of stones.

Enteric hyperoxaluria results from increased absorption of oxalate in the large bowel. In general, there are 3 ways in which this might occur:
  • Increased dietary oxalate ingestion
  • Decreased dietary calcium intake - calcium binds oxalate in the gut and reduces absorption. This is why low calcium diets are not recommended in patients with idiopathic kidney stones. Calcium supplements are a different issue as they may contribute to hypercalciuria and not decrease oxalate ingestion, particularly if they are not taken at mealtimes
  • In the setting of malabsorption syndromes and GI disease. This occurs in patients following bariatric surgery, fat malabsorption and inflammatory bowel disease. The mechanism is thought to be related to binding of calcium to fatty acids thus reducing the availability of calcium for oxalate-binding, along with increased large bowel permeability. There have been multiple cases of patients developing severe oxalosis following jejuno-ileal bypass surgery.
The treatment of hyperoxaluria depends on the cause. For all patients, increasing fluid intake is good advice. Some patients with primary hyperoxaluria respond to treatment with pyridoxine which promotes conversion of glycoxylate to glycine instead of oxalate. Recently, a bacterium has been identified that metabolizes oxalate in the gut and this has been proposed as a potential treatment for hyperoxaluria. Interestingly, antibiotic treatment has been shown to decrease oxalobacter colonization in individuals with peptic ulcer disease.

Of course, all patients with hyperoxaluria should be advised to reduce oxalate consumption in the diet. Foods high in oxalate include spinach, rhubarb, tea, chocolate, star fruit and soy products. A full list can be found here.

Rhubarb is an interesting case. In the First World War because of the lack of access to fresh vegetables, the British government recommended that families supplement their diets with rhubarb leaves which were not traditionally eaten. It turns out that this was very bad advice. Rhubarb leaves contain considerably more oxalate than the stalks and there was a flurry of case reports towards the end of the war detailing cases of oxalate poisoning from rhubarb leaf consumption (see also and this). The toxicity of the leaves was probably increased by advice to cool the leaves with soda which increases the solubility of oxalate. Although the MD50 of oxalate would require the ingestion of about 5kg of rhubarb leaves, one could imagine that much lower doses would be toxic in patients with chronic kidney disease.

One last point about oxalate. It is a terminal metabolite and was thought to not have any positive role. However, recent data have suggested that oxalate is important for chloride transport in the proximal tubule where it acts similarly to formate..

Kidney Stones - What's the diagnosis? - Answer

This was an interesting case and all those who responded correctly identified that the patient had bowel pathology. However, only one person figured out that the issue was an ileostomy. This patient had a low urine volume and an extremely low urinary citrate and sodium. The low citrate could indicated a renal tubular acidosis except that the urinary ammonium was high and the urine pH was very low indicating preserved ability to acidify the urine. This points to a metabolic acidosis. The urine sodium in an average US resident is between 100-200 mmol/day. Outside of the amazon, it's hard to imagine that anyone could take in this little salt. This points towards loss of sodium bicarbonate and water from the GI tract.

Finally, in the setting of IBD, generally it is accompanied by hyperoxaluria. There are a number of potential mechanisms for this; decreased metabolism of oxalate by oxalobacter formigenes, decreased calcium binding to oxalate because of the relatively increased binding of calcium to malabsorbed fat in the GI tract. In any case, in order to have hyperoxaluria, it is necessary to have a functioning large bowel. In this case, the patient's urinary oxalate was 28 which is in the low normal range and not suggestive of hyperoxaluria. Thus, the diagnosis is high output of alkaline fluid from an ileostomy.

The treatment in this case is to increase fluids and treat with a combination of sodium and potassium citrate. Even a small rise in urine pH would significantly reduce the risk of uric acid stones while the citrate and increased volume should reduce the calcium oxalate stone risk.

Kidney Stones - What's the diagnosis?

A 65yo man was reviewed in the clinic for assessment of kidney stones. He has a history of stones for at least 8 years and has been passing small calculi on a regular basis for the last few months. His 24 hour urine results are shown below (results are 24 hour total values unless otherwise specified):


Volume, Liters
0.71
Sodium, mmol/day
7
Supersaturation Calcium Oxalate
10.11
Potassium, mmol/day
45
Calcium, mg/day
78
Magnesium, mg/day
52
Oxalate, mg/day
28
Phosphate, mg/day
0.76
Citrate, mg/day
11
NH4, mmol/day
68
Supersaturation Calcium Phosphate
0.71
Chloride, mmol/day
48
Urine pH
5.6
Sulphate, mEq/day
39
Supersaturation Uric Acid
2.71
Urea Nitrogen, g/day
11
Uric Acid, mg/day
0.499
Protein Catabolic Rate
1.2
Creatinine
1292



He has a high risk for calcium oxalate and uric acid stones. His urine citrate and sodium are remarkably low and he has a very low urine volume. His BP in the clinic was normal as were his labs apart from a serum creatinine of 1.3mg/dl

What is the underlying diagnosis (an important  piece has been left out of his background history)?
What is the best approach to treating his kidney stones?

Answers in the comments please (if this proves popular we may make it a regular feature).






Fruit Flies and Kidney Stones

Developing accurate animal models of human diseases is a well-established research goal but a recent paper reporting a new animal model of nephrolithiasis caught my attention. Kidney stones are an important cause of morbidity and dealing with them is estimated to cost more than $5 billion yearly in the US alone. The majority of cases are due to calcium oxalate stones which variously results from increased urinary calcium excretion or increased urinary oxalate (which may be due to increased production or gut absorption of oxalate).

A group in the Mayo clinic and Glasgow have developed a fruit fly model of calcium oxalate nephrolithiasis. Fruit flies have a single transparent kidney tubule and feeding the larvae a diet high in oxalate for just two days leads to the formation of visible calcium oxalate kidney stones.

The upper panel of the image above shows a renal tubule dissected out from a fruit fly fed with oxalate compared with one fed with a normal diet. The second panel is a high power view of the tubule along with a nice picture of some calcium oxalate crystals. The lower 3 panels are a series of pictures of a tubule kept in a bath high in oxalate where you can see the crystals forming over a period of hours - the authors helpfully included a video if this happening in the supplemental data of the manuscript. There are also some micro-CT images of the fruit flies with the stones in situ. The rapid formation of stones in these flies makes it an excellent model for the study of nephrolithiasis.

Also, it's really cool.

From acid to nephrocalcinosis to stones


Can you have an acidosis with normal serum bicarbonate? Of course you can, it's just incomplete. Incomplete distal renal tubular acidosis (idRTA) that is.

RTA was first described in 1935, confirmed as a renal tubular disorder in 1946, and designated “renal tubular acidosis” in 1951 (see here for an excellent review). Now it gets complicated, not only with regard to nomenclature but also with mechanisms.

I was a little surprised to hear that you can have distal RTA with a normal bicarbonate. It is just disguised. Patients with incomplete distal RTA have persistently high urine pH but are still able to excrete acid under normal conditions (therefore the normal serum bicarbonate). However, in states of high acid loads (high protein diet, catabolic stress) they are unable to excrete that acid which then triggers alkali release from the bone and thus causes greater bone resorption, therefore these patients have frequently osteopenia and osteoporosis.

Distal RTA occurs with a number of conditions, amongst them classically Sjogrens syndrome but also other autoimmune conditions. Cisplatin has been mentioned as one of the causes of idRTA in this blog earlier. idRTA is a common cause of nephrocalcinosis - with or without stones - and it has a number of prominent victims as also mentioned in a previous post.

idRTA can be diagnosed by induction of a systemic metabolic acidosis by means of acid loading. This is  commonly done with ammonium chloride (NH4Cl) but there is also a furosemide and fludrocortisone test that apparently causes less abdominal discomfort. Failure to acidify urine to a pH of less than 5.3 is consistent with incomplete distal renal tubular acidosis. However, testing is a little bit tedious and therefore not commonly done. The urinary citrate is commonly low in dRTA which contributes to nephrocalcinosis and stone formation.


A recent study from Switzerland showed that 6.7% of 150 male recurrent calcium stone formers (RCSFs) had idRTA, i.e., 1 out of 15 male RCSFs can be expected to have idRTA. They therefore suggest that idRTA is overall underdiagnosed.

Posted by Florian Toegel